[0001] The present invention relates to a metallurgical furnace of the type that can be
converted into an electric arc furnace or converter for conducting production processes
for producing metals in the molten state, in particular steel or cast iron.
[0002] The present invention also relates to a modular metallurgical plant comprising said
metallurgical furnace of the convertible type for conducting production processes
for producing metals in the molten state, in particular steel or cast iron.
[0003] With particular reference to the production of steel, production processes of molten
steel of the known type can be divided into two main types depending on the raw material
used:
- So-called "Integral Cycle" Production Process or "Blast Furnace Steelmaking",
- So-called "Scrap Cycle" Production Process or "Electric Arc Furnace Steelmaking".
[0004] The so-called "Integral Cycle" production process uses cast iron in the molten state
tapped from a blast furnace, as main raw material. The molten cast iron is transformed
into steel due to oxidation of the Carbon contained therein. This process is carried
out inside a converter also known with the abbreviation BOF (Basic Oxygen Furnace),
into which the cast iron in the molten state is charged batchwise and the oxygen necessary
for the oxidation of the carbon is fed through an injection lance.
[0005] As is known, this process is strongly exothermic and does not require further external
energy supplies; on the contrary, controlled quantities of scrap DRI (Direct Reduced
Iron), HBI (Hot Briquetted Iron) and iron minerals as cooling agents of the metal
bath, are sometimes added to the cast iron in the molten state.
[0006] One of the problems that arise in conducting this type of production process consists
in so-called "slopping", i.e. an overflow of the material from the mouth of the converter.
This overflow is due to the development of particularly violent reactions that are
generated when the production of CO is at maximum levels and causes an uncontrolled
foaming of the slag, also generating oscillating movements of the metal bath.
[0007] Numerous attempts have been made for controlling and limiting slopping.
[0008] As described in
US4210023,
US5028258 or
US5584909, for example, the monitoring of a process parameter is proposed (such as, for example,
the height of the slag, sounds that develop in the converter or the production of
CO), whose values can be indicative of the onset of the slopping phenomenon, consequently
modifying the oxygen supply, reducing its flow-rate and/or lowering its injection
point and/or introducing calcium-based cooling agents.
[0009] These methods, however, are inevitably affected by errors of the monitoring system
adopted, and unacceptably slow down the production process. Both the monitoring system
used, and the oxygen injection lance, moreover, are subject to damage and breakage
and require frequent maintenance and substitution interventions.
[0010] Adding additives to the molten bath, capable of modifying the rheological properties
of the slag, in particular decreasing its viscosity, has also been proposed for mitigating
the slopping phenomenon, as described, for example, in
US 4473397.
[0011] This method, however, has high costs due to the use of additives, such as, for example,
calcium carbide.
[0012] The slopping phenomenon therefore remains one of the main problems in conducting
"integral cycle" steel production processes.
[0013] The so-called "scrap cycle" production process, on the other hand, uses, as main
raw material, materials prevalently or totally in the solid state consisting of scrap
possibly mixed with pig iron, DRI (Direct Reduced Iron), HDRI (Hot Direct Reduced
Iron), HBI (Hot Briquetted Iron), iron minerals and additives of the known type.
[0014] These materials are fed, batchwise and/or in continuous, and possibly preheated (such
as, for example, the known Consteel
® system), into known electric arc furnaces (EAF) where they are melted thanks to the
contribution of thermal energy supplied from electric arcs.
[0015] The structure, equipment and functioning of a converter (BOF) and those of an electric
arc furnace (EAF), as also those of the relative steelmaking plants, are extremely
different from each other. These differences are such, in fact, that, due to variations
in the availability, in quantitative and/or economic terms, of the raw materials that
can be used, it is impossible to use cast iron as a feed material of a traditional
EAF in percentages close to 100%, or scrap as feed material of a traditional BOF in
percentages close to 100%.
[0016] In some countries, such as China for example, steelmaking plants for the "scrap cycle"
production of steel have long been installed, whose furnaces are therefore to all
effects electric arc furnaces. Due to the shortage of scrap and availability of electric
energy that have occurred over the years, these plants have been used by substituting
the scrap with liquid cast iron in such quantities as to render the supply of electric
energy unnecessary, adopting production processes as described, for example, in
CN102634637 or in
CN100363508. The furnace of these plants is structured and equipped from the outset as an electric
arc furnace, in which, as it is known, lances for the injection of oxygen, coal and
other materials are already present. For conducting steel production processes starting
from raw materials prevalently consisting of liquid cast iron, these lances have been
enhanced for meeting the increased requirement for reagents necessary for the transformation
reactions of liquid cast iron into steel, substantially keeping the structure and
configuration of the furnace unchanged.
[0017] In these plants so diversely used, in which the EAF is fed with a charge prevalently
consisting of liquid cast iron to such an extent as to make the electric energy supply
unnecessary, the problem relating to slopping or splashing, i.e. the projection of
molten material onto the roof of the furnace or onto the fume suction connection,
and solidification of this material with the forming of deposits (jamming), has remained
unsolved.
[0018] An object of the present invention is to provide a metallurgical furnace whose structure
and configuration are suitable and easily adaptable for conducting production processes
for the production of metals in the molten state, in particular steel or cast iron,
starting from any raw material or mixture of raw materials available, preferably,
but not necessarily, fed in continuous.
[0019] A further object of the present invention is to provide a metallurgical furnace in
which production processes for the production of metals in the molten state, in particular
steel or cast iron, starting from any raw material or mixture of raw materials available,
preferably, but not necessarily, fed in continuous, can be conducted, reducing known
"slopping", "splashing" and "jamming" phenomena, and at the same time guaranteeing
a good mixing of the metal bath in any operative condition.
[0020] Another object of the present invention is to provide a modular metallurgical plant
that can be easily adapted to conducting production processes for the production of
molten metals, in particular steel or cast iron, starting from any raw material or
mixture of raw materials available, preferably, but not necessarily, fed in continuous.
[0021] <Document
JPH08-233466A discloses a furnace comprising a tilting belly section having the top end open and
connectable in a removable manner to a roof section and the bottom end closed and
connectable in a removable manner to a bottom supporting section. By changing the
roof section and the bottom supporting section, maintaining the same belly section,
the furnace is configurable as an electric arc furnace or as a converter. Document
US3905589 discloses a metallurgical vessel having an energy source and in which molten metal
is contained for processing, wherein a tuyere system is provided below the level of
molten metal to permit injection of gases, fluxes, ores, alloying additions and other
material to convert the molten metal to steel.>
[0022] Yet another object of the present invention is to provide a modular metallurgical
plant that is structurally and functionally flexible for being easily adapted, with
a limited number of interventions, to conducting production processes for the production
of molten metals, in particular steel or cast iron, starting from any raw material
or mixture of raw materials available, preferably, but not necessarily, fed in continuous.
[0023] These objects according to the present invention are achieved by producing a metallurgical
furnace of the type that can be converted into an electric arc furnace or converter
for conducting production processes for the production of metals in the molten state,
in particular steel or cast iron, as outlined in claim 1.
[0024] These objects according to the present invention are also achieved by producing a
modular metallurgical plant for conducting production processes for the production
of molten metal, in particular steel or cast iron, as outlined in claim 11.
[0025] Further characteristics are provided in the dependent claims.
[0026] The characteristics and advantages of a furnace and metallurgical plant according
to the present invention will appear more evident from the following illustrative
and non-limiting description, referring to the enclosed schematic drawings, in which:
figure 1 is a scheme of a metallurgical plant according to the present invention for
the production of steel or cast iron;
figure 2 is a scheme of the metallurgical furnace according to the present invention
for the production of steel or cast iron;
figure 3 is an axonometric view of a possible embodiment of a metallurgical furnace
according to the present invention for the production of steel coupled with a feeding
group for the continuous supply of material in the molten state;
figures 4 and 5 are schematic sections according to two vertical planes orthogonal
to one another of figure 3;
figure 6 is a schematic section according to a horizontal plane of figure 3;
figures 7, 8 and 9 schematically show various possible configurations of a metallurgical
plant for the production of steel according to the present invention with a variation
in the type of charge material respectively consisting of about 90% of scrap and 10%
of liquid cast iron (figure 7), 50% of scrap and 50% of liquid cast iron (figure 8)
and 10% of scrap and 90% of liquid cast iron;
figures 7A, 8A and 9A are views on an enlarged scale of a detail of figures 7, 8 and
9 respectively.
[0027] With reference to the figures, these show a metallurgical furnace 10 of the type
that can be converted into an electric arc furnace or into a converter for conducting
production processes for the production of metals in the molten state, in particular
steel or cast iron.
[0028] As specified hereunder, the furnace 10 is suitable for conducting production processes,
in particular for the production of steel or cast iron, starting from any mixture
of charge materials in the solid state and/or charger materials in the liquid state.
[0029] Charge materials in the solid state refer, in particular, to scrap, pig iron, HBI
(Hot Briquetted Iron), DRI (Direct Reduced Iron), HDRI (Hot Direct Reduced Iron).
[0030] Charge materials in the liquid state refer, in particular, to molten cast iron (liquid
cast iron).
[0031] Process raw materials such as oxygen, pulverized coal, lime, dolo lime, alloying
materials and others known to skilled persons in the field, are added to said charge
materials, alone or mixed with each other.
[0032] The furnace 10, in particular, preferably has a continuous functioning and is installed
in a production plant 100 of steel or cast iron in which the charge materials, whether
they be in the solid or liquid state, alone or mixed with each other, are preferably,
but not necessarily, fed in a continuous and controlled manner.
[0033] The furnace 10 comprises:
- a vessel in turn comprising:
- a lower shell 11 for containing the metal bath, wherein the metal bath formed during
the production process is composed of molten metal and an overlying layer of slag,
and
- a upper shell 12 removably positioned on the lower shell 11,
- a closing roof 13 for the upper closing of the vessel and which is removably positioned
above the upper shell 12.
[0034] The lower shell 11 is advantageously, but not necessarily, internally coated with
a refractory material so as to be able to contain the molten metal bath.
[0035] The lower shell 11 is tiltingly supported around a horizontal tilting axis by means
of a tilting mechanism 14 configured for allowing a tilt with respect to the vertical
plane of -12° (for carrying out deslagging operations) and +20° (for carrying out
casting operations), against tilts of -10° and +15° respectively typical of an EAF
of the known type.
[0036] The lower shell 11 is provided with a deslagging opening 15 for evacuating the slag
overlying the molten metal.
[0037] The deslagging opening 15 is of the closable type and communicates with a deslagging
channel of the known type.
[0038] The lower shell 11 is also provided with a tapping opening 16 for tapping or casting
the molten metal (not represented in figures 1 and 2). The tapping opening 16 can
consist, in the known manner, of a casting hole of the reclosable type which is situated
in the bottom of the lower shell 11 in an eccentric position (known as EBT:
Eccentric Bottom Tapping), or it can consist of a free beak or siphon system.
[0039] During the steel production process, both the deslagging opening 15 and the tapping
opening 16 can advantageously be substantially hermetically closed to prevent the
entry of atmospheric air into the furnace 10 and the exit of gases from the furnace
10, generated in its inside. This is advantageously the case when the charge material
totally or prevalently consists of cast iron in the molten state (liquid cast iron)
and the furnace 10 is used in converter mode; in this case, in fact, in some of the
implementation phases of the production processes, gases rich in carbon monoxide (CO)
are generated, that can be recovered and re-used also inside the same steelworks as
fuel, for example.
[0040] The upper shell 12 is removably positioned above the lower shell 11 and is provided
with at least one inlet opening 17a, 17b for feeding charge material in the solid
or molten state through the same.
[0041] In a preferred embodiment, the upper shell 12 comprises:
- a first inlet opening 17a for feeding charge material in the solid state through the
same, which can be associated with a first feeding group 102a for the continuous feeding
of said charge material in the solid state and/or
- a second inlet opening 17b for feeding charge material in the molten state through
the same, which can be associated with a first feeding group 103a for the continuous
feeding of said charge material in the molten state.
[0042] The upper shell 12 preferably comprises both the first inlet opening 17a and the
second inlet opening 17b.
[0043] Also in this case, as mentioned above, during the steel production process, the inlet
opening(s) 17a, 17b positioned in the upper shell 12, can advantageously be substantially
hermetically closed to prevent the entry of atmospheric air into the furnace 10 and
the exit of gases from the furnace 10, generated in its inside. This is advantageously
the case when the charge material totally or prevalently consists of cast iron in
the molten state (liquid cast iron) and the furnace 10 is used in converter mode;
in this case, in fact, in some of the implementation phases of the production processes,
gases rich in carbon monoxide (CO) are generated, that can be recovered and re-used
also inside the same steelworks as fuel, for example.
[0044] The roof 13 is provided with a passage opening 18 for the passage through the same
of at least one electrode. The passage opening 18 is generally removably obtained
in the central portion of the roof 13 and can be coupled with a removable completion
element 19, also called "delta", in which at least one pass-through hole 19a is obtained
for the passage of a corresponding electrode E such as a graphite electrode, as described
hereunder. The roof "delta" 19 is coupled with the roof 13 if the furnace 10 is to
be supplied with electric energy by means of one or more electrodes E.
[0045] The roof 13 can also comprise at least one charge opening 20 for feeding charge material
in the solid state through the same, and/or at least one evacuation opening 21 for
discharging the gas fumes generated inside the furnace 10 during the production process.
[0046] At least one of the inlet opening(s) 17a, 17b, passage opening 18, charge opening
20 and evacuation opening 21, when provided, is associated with a respective closing
element of the removable type or, alternatively, can be removably sealed depending
on the configuration of use of the furnace 10, as described hereunder.
[0047] The upper shell 12 can be of the cooled type, i.e. consisting of panels in which
circuits are obtained through which cooling fluids circulate or radiators.
[0048] Alternatively, the upper shell 12 can be internally coated with a refractory material
and possibly cooled by air or by means of radiators, or it can be completely made
of refractory material.
[0049] As described hereunder, the furnace 10 is equipped with a group of injectors 22 for
the injection of oxygen, methane, pulverized coal, lime or other raw materials suitable
for conducting the production process; in a preferred embodiment, the injectors 22
are inserted in the upper shell 12.
[0050] The furnace 10 is dimensioned so as to be able to be easily adapted to various configurations
of use in relation to the type of raw materials available and the availability of
electric energy, to enable it to be used as an electric arc furnace or as a converter,
in both cases guaranteeing a good mixing of the metal bath and a reduction in bubbling
phenomena and jets of slag and/or molten metal.
[0051] More specifically,
D being the diameter of the lower shell 11 and
H the overall height of the vessel, measured from the bottom of the lower shell 11
as far as the upper end of the upper shell 12, said H ranges from
0.70D to
1.25D.
[0052] The height
H preferably ranges from
0.70D to
0.80D when the furnace 10 is used as an electric arc furnace and from
0.80D to
1.25D when the furnace 10 is used as a converter.
[0053] The variation in height
H is obtained by substituting the upper shell 12 with another having a suitable height,
with the same lower shell 11.
[0054] It should be pointed out that the diameter
D is the maximum external diameter of the lower shell 11 and the height
H is the overall external height of the both the lower shell 11 and upper shell 12.
[0055] The diameter
D is determined, in the known way, in relation to the type of raw materials available
and mixture of the same used as charge material, the productivity and decarburization
rate required.
[0056] Furthermore,
S being the extension in m
2 of the free surface of the metal bath, it meets the condition according to which
R being the ratio between the flow-rate of carbon monoxide (
PCO in m
3CO/min) generated during the decarburization of the metal bath for the production
of steel or cast iron and the extension
S, said ratio
R(
=PCO/
S) is
≥ 16 ([m
3CO/min
[/[m
2]), against maximum values of
R equal to 12 typical of the known electric arc furnaces. This guarantees a greater
productivity in terms of decarburization of the metal bath, in particular if the furnace
10 is used in the converter mode.
[0057] It should be pointed out that the extension
S of the free surface of the metal bath is measured above the concave bottom of the
lower shell 11 in correspondence with the cylindrical portion of the shell having
a substantially constant transversal section.
[0058] The height of the metal bath
Lb contained in the lower shell 11 varies from a minimum value, which depends on the
penetration degree of the oxygen injected by the injectors 22 into the metal bath,
and a maximum value, which on the one hand must keep the metal bath being formed homogeneous,
avoiding stratification phenomena of the same, and on the other hand must guarantee
that the deslagging operations are effected when the furnace 10 is used in the converter
mode.
[0059] Lbmax being the maximum level (i.e. maximum height) that can be reached by the metal bath
in the lower shell 11, the vertical distance
h between
Lbmax and the lower edge of the deslagging opening 15 ranges from
0.055D to
0.077D. This allows a better containment of the metal bath, particularly when the furnace
10 is used in the converter mode, when the slag is subject to bubbling phenomena,
at times intense.
[0060] In practice, the deslagging opening 15 (or better the lower edge of the same) is
at a greater height
h with respect to the maximum level of the metal bath
Lbmax than in electric arc furnaces of the known type so as to prevent possible leakages
of material during the production processes, in particular in the converter mode.
[0061] In an electric arc furnace of the known type, for example,
h typically ranges from 250 mm to 350 mm, whereas in the furnace according to the present
invention,
h ranges from 350 mm to 500 mm.
[0062] Furthermore, the vertical distance
h' between the maximum level (maximum height)
Lbmax that can be reached by the metal bath contained in the lower shell 11 and the lower
edge of the inlet opening 17a obtained in the upper shell 12 for the entry of charge
material in the solid state, ranges from
1.6 m to
2.2 m, (
h'=1.6 m - 2.2 m).
[0063] Also in this case, the inlet opening 17a (the lower edge of the same) is basically
at a greater height with respect to the maximum level of the metal bath
Lbmax than in electric arc furnaces of the known type so as to prevent possible leakages
of material during the production processes, in particular in the converter mode.
[0064] In an electric arc furnace of the known type, for example,
h' typically ranges from 900 mm to 1400 mm, whereas in the furnace according to the
present invention,
h' ranges from 1600 mm to 2200 mm. The inlet opening 17a is in any case confined in
the development in height of the upper shell 12.
[0065] The upper shell 12 has a diameter coinciding with that of the lower shell 11 and
a height which is such as to meet the conditions indicated above with respect to the
height
H of the whole vessel.
[0066] Finally,
dmax being the maximum height or maximum distance of the roof 13 with respect to the upper
shell 12 measured along the central axis of the vessel,
dmax ranges from
0.9 m to
2 m. This allows possible jets released from the metal bath to be reduced, in particular
when the furnace 10 is used in convertor mode.
[0067] The roof 13 is of the totally removable type and, as already specified above, comprises
a passage opening 18 for the passage of at least one electrode E when the furnace
10 is used as an electric arc furnace.
[0068] In this case, a completion element 19, (roof "delta" or "delta" made of a refractory
material) is advantageously removably coupled with the passage opening 18; said completion
element 19 comprises one or more pass-through holes 19a for the passage of a corresponding
electrode E.
[0069] A closing body 23 is also provided, which is removably associated with the roof 13
or with the completion element 19 for closing the passage opening 18 (in this case,
the closing body forms a roof "delta") or the pass-through holes 19a, respectively.
The furnace 10 can also be configured as an electric arc furnace or as a converter:
in the former case, the passage opening 18 of the roof 13 is coupled with the completion
element 19, (refractory roof "delta") for the insertion, through the same, of at least
one electrode E, in the latter case, the passage opening 18 is closed by the closing
body 23.
[0070] The closing body 23 is of the cooled type.
[0071] The roof 13 also comprises one or more charge openings 20 for feeding charge material
in the solid state. In particular, the charge openings 20 are removably coupled with
a second feeding group 102b for the continuous feeding of the charge material in the
solid state, such as, for example, DRI (represented only in figure 1). These charge
openings 20 are preferably of the closable type by means of a respective closing element
advantageously of the removable type.
[0072] The evacuation opening 21 for evacuating fumes/gases that are generated during the
production process, can be coupled with an extraction module 105 (suction) for the
extraction of the fumes (represented only in figures 1 and 2). If the furnace 10 is
used in the converter mode, the evacuation opening 21 is generally coupled with the
fume extraction module (suction). If, on the other hand, the furnace 10 is used as
an electric arc furnace in continuous, the evacuation opening 21 is generally closed
by a respective closing element advantageously of the removable type; the fumes generated
inside the furnace 10 are discharged through the first continuous feeding group 102a
of the charge material in the solid state (of the type Consteel
® of the known systems) which is connected to the first inlet opening 17a for preheating
the charge material itself.
[0073] The evacuation opening 21 is dimensioned in relation to the suction rate of the fumes
to be obtained and which, when the furnace 10 is used in the converter mode, must
be limited in order to prevent the powders or other materials from being entrained
with the fumes, possibly blocking the extraction module and/or subsequent treatment
systems of the fumes extracted.
[0074] Also in this case, all of the openings obtained in the roof 13 (except for the evacuation
opening 21), and also the connection between the roof 13 and the upper shell 12, can
be substantially hermetically closed in order to prevent the entry of atmospheric
air into the furnace 10 and the exit of gases from the furnace, that are generated
in its inside. This is advantageously the case when the charge material totally or
prevalently consists of cast iron in the molten state (liquid cast iron) and the furnace
10 is used in the converter mode; in this case, in fact, in some of the implementation
phases of the production processes, gases rich in carbon monoxide (CO) are generated,
that can be recovered and re-used also inside the same steelworks as fuel, for example.
[0075] The furnace 10 also comprises an injection group comprising at least three (3) injectors
22 for the injection of process fluids or powders into the same furnace 10.
[0076] In a preferred embodiment, the injectors 22 are positioned in correspondence of the
upper shell 12; the possibility is not excluded, however, that the injectors 22 be
positioned in correspondence of the roof 13, the horizontal panel of the EBT chamber
or along the first feeding group 102a for the continuous feeding of charge material
in the solid state through the first inlet opening 17a of the upper shell 12.
[0077] The injectors 22 are particularly conceived for injecting oxygen (O
2) and/or materials in the powder form or granules such as, for example: lime, dolo
lime, coal or other materials necessary for the formation and control of slag.
[0078] If the injectors 22 are provided for the injection of oxygen, they can be provided
for the injection of:
- supersonic oxygen for the decarburization process with shrouding flame of the main
jet,
- oxygen necessary for the post-combustion process and, in this case, the injectors
22 are advantageously positioned in the roof 13 so as to be facing the first inlet
opening 17a obtained in the upper shell 12 and with which the first feeding group
of charge material in the solid state (such as Consteel®), is coupled,
- oxygen for the decarburization process beneath the surface of the metal bath.
[0079] An object of the present invention also relates to a metallurgical plant 100 comprising
a furnace 10 as described above, i.e. the plant 100 can be flexibly configured and
adapted to different conditions and production requirements that can vary with time
in relation to the availability of electric energy and/or the type of raw materials
available.
[0080] The plant 100 is of the modular type for conducting production processes for the
production of molten metal, in particular steel or cast iron, and in particular for
conducting production processes in which the charging of any mixture of raw materials
or charge material into the furnace 10 and melting of the same inside the furnace
10 take place in a continuous and controlled manner.
[0081] The term raw materials refers to both charge materials in the solid state, and charge
materials in the molten or liquid state and also to process materials of the known
type and variable in relation to the production process carried out.
[0082] For the production of steel or cast iron, in particular, for charge material in the
molten state, the cast iron is in the molten state (liquid cast iron), whereas charge
material in the solid state refers to scrap, DRI (direct reduced iron), HDRI (hot
direct reduced iron), pig iron and HBI (hot briquetted iron), wherein the charge materials
in the liquid state and in the solid state can be used alone or in a mixture of two
or more of each other.
[0083] Process materials such as oxygen, coal, methane, lime, dolo lime, alloying materials
and others known to skilled persons in the field, are added to these charge materials.
[0084] The charge materials are preferably fed in continuous, by way of example and not
limited, with the following methods: continuous feeding with or without preheating
of the charge material in the solid state, by means of a lateral inertial conveyor
(e.g. Consteel
®) or through the roof 13 (for scrap, pig iron HBI); continuous feeding by means of
conveyor belts or conveyors, through the roof 13 (for DRI and Hot DRI); continuous
feeding by means of a ladle and adduction to the furnace by means of a lateral channel
or through the slag door of the furnace (for liquid cast iron or other liquid material).
[0085] A batch-type feeding, of the type with baskets, is also possible, through the top
of the vessel with the roof 13 completely open, particularly in the case of solid
charge material.
[0086] Depending on the charge material and metal to be produced, the energy supply necessary
for the production process can be of the electric and/or chemical type.
[0087] Electric energy developing heat is supplied by means of one or more electrodes and
the chemical energy developing and sustaining the reactions is supplied by means of
oxygen and possible fuels (gaseous or pulverized) that are injected into the metal
bath.
[0088] The plant 100 comprises a furnace 10 and at least one operating module selected from
the group comprising:
- a power supply module of electric energy 101 for supplying electric energy to the
metal bath and comprising at least one electrode E removably insertable in the vessel
through the passage opening 18 obtained in the roof 13,
- a feeding module of charge material in the solid state 102 for the continuous feeding
of charge material in the solid state into the furnace 10 and in turn comprising at
least one feeding group for feeding in continuous charge material in the solid state
selected from:
- a first feeding group 102a for the continuous feeding of the charge material in the
solid state that can be removably associated with the first inlet opening 17a obtained
in the upper shell 12 for the continuous feeding, through the same, of charge material
in the solid state,
- a second feeding group 102b (not illustrated in detail as it is of the type known
to skilled persons in the field) for the continuous feeding of the charge material
in the solid state that can be removably associated with the charge opening 20 obtained
in the upper roof 13 for the feeding, through the same, of charge material in the
solid state,
- a feeding module of charge material in the molten state 103 for the feeding, preferably
in continuous, of charge material in the molten state into the furnace 10 and comprising
a feeding group 103a for the feeding, preferably in continuous, of material in the
molten state that can be removably associated with the second inlet opening 17b obtained
in the upper shell 12 for the feeding, through the same, of charge material in the
molten state,
- a feeding module of charge material in the molten state, of the type, for example,
with baskets, and not illustrated as it is of the known type, for the batch feeding
of charge material in the solid state into the furnace 10 through the top of the vessel
(i.e. with the roof 13 open),
- an extraction module of the fumes 105 which are generated inside the furnace 10 during
the production process of the molten metal and that can be removably associated with
the evacuation opening 21 obtained in the roof 13, also in this case, the fume extraction
module is not illustrated in detail as it is of the type known to skilled persons
in the field.
[0089] The power supply module of electric energy 101 for the supply of electric energy
to the metal bath comprises at least one electrode E removably insertable in the vessel
through the passage opening 18 obtained in the roof 13 through the completion element
19 (roof "delta") coupled with the same.
[0090] The electric energy, that can be of the DC or AC type, is transferred by means of
an electric arc, and is conducted through electrodes E made of graphite or equivalent
materials.
[0091] The module 101 comprises in particular arms 110 that support the electrodes E, said
arms 110 being configured, in the known way, for conducting current to the same electrodes,
and also for extracting the electrodes E from the roof 13, by lifting and rotating
them or moving them in another position, and also for regulating their position in
relation to wear, also with automatic methods ("auto slipping").
[0092] The first feeding group 102a for the continuous feeding of charge material in the
solid state and which can be removably associated with the first inlet opening 17a
obtained in the upper shell 12 for the continuous feeding, through the same, of charge
material in the solid state, advantageously, but not exclusively, consists of a known
"Consteel
®" system which feeds charge material (scrap, DRI, pig iron, etc.) in continuous, preheating
it with the heat of the fumes leaving the furnace 10.
[0093] Said "Consteel
®" system is described, for example, in
US4543124,
US5800591,
PCT/EP2013/001941 and consists of a continuous conveyor of the charge material along which a charging
area 120, in correspondence with which the charge material is deposited on the conveyor,
and a preheating area 122 of the charge material, in correspondence with which the
charge material is preheated by the heat of the fumes developed in the furnace 10,
are defined in sequence, starting from the furthest end towards the closest end with
respect to the furnace 10.
[0094] In correspondence with the preheating area 122, the conveyor is housed in a tunnel
124 that has one end connected to the first inlet opening 17a and the opposite end
provided with a suction device of the fumes 121 upstream of which a sealing device
123, configured for limiting the entry of atmospheric air into the tunnel 124, is
positioned. The fumes generated in the furnace 10 are sucked along the tunnel 124
and while passing through the same, they transfer heat to the charge material which
is thus preheated.
[0095] In this case, the evacuation opening 21 of the roof 13 is closed by a respective
closing element or in any case sealed.
[0096] The first feeding group 102a is provided for feeding charge material in the solid
state into the furnace 10, comprising scrap, DRI, solid cast iron, alone or mixed
with one another.
[0097] If the charge material in the solid state does not form the mixture of process raw
materials or is introduced into the same only through the roof 13, the first feeding
group 102a is absent and the first inlet opening 17a is closed by a respective closing
element or in any case sealed.
[0098] The second feeding group 102b for the continuous feeding of charge material in the
solid state and which can be removably associated with the charge opening 20 formed
in the roof 13, comprises, for example, conveyor belts or conveyors that are installed
above the roof 13 and positioned so that their discharging end communicates with the
at least one charge opening 20.
[0099] The material in the solid state fed through the roof 13 generally comprises small-sized
raw materials, such as, for example, ground scrap, DRI or HBI (at room temperature
(DRI), if collected from a storage deposit, or at a high temperature (HDRI or HBI),
if it comes directly from a production plant integrated in the plant 100 without intermediate
storage), and/or deslagging additives (typically lime, dolo lime, etc.), fuel additives
(coal), alloying materials.
[0100] The feeding group 103a for the feeding, preferably in continuous, of material in
the molten state and which can be removably associated with the second inlet opening
17b obtained in the upper shell 12 for feeding, through the same, charge material
in the molten state, consists of a dosing device for the controlled introduction of
liquid cast iron or other molten materials into the furnace 10.
[0101] It comprises a supporting structure 130 on which a ladle 131 or other container containing
the charge material in the molten state (generally cast iron) is positioned, and which
is tilted so as to pour the charge material in the liquid state into a channel 132
whose discharge end is in communication with the second inlet opening 17b of the upper
shell 12.
[0102] The tilting of the ladle 131 is controlled by means of suitable control systems in
order to regulate the flow-rate of cast iron fed into the furnace 10. Said flow-rate
can be kept at a constant value or it can follow a certain trend with time depending
on the process requirements. The control systems can comprise, for example, hydraulic
actuators 133 or of another type, controlled in relation to the signals revealed by
detection devices for the direct or indirect detection of the weight or in any case
the content of the ladle 131 such as, for example, load cells, optical measuring devices,
gauges for measuring the pressure inside the hydraulic actuators, inclinometers, etc.
[0103] If the raw materials forming the charge of the furnace do not comprise charge material
in the liquid state, the relative feeding module 103 and corresponding feeding group
103a are absent and the second opening 17b of the upper shell 12 is closed by a respective
closing element of the removable type or in any case sealed.
[0104] As indicated above, a feeding module of charge material in the solid state can also
be provided, which feeds charge material in the solid state batchwise into the furnace
10 through the roof 13 or in any case through the open top of the vessel. This module
can comprise, for example, known basket-type charging groups.
[0105] It should be pointed out that all of the modules and relative feeding groups of charge
material in the solid state or liquid state are controlled and piloted in relation
to the process requirements.
[0106] If the plant 100 operates in the continuous mode, the feeding rate of the various
charge materials can be regulated in relation to the process requirements, depending
on the type or weight of the charge material: the feeding rate of the various materials
generally follows a predefined time trend.
[0107] The extraction module 105 for the extraction of the fumes generated inside the furnace
10 during the production process of molten metal and which can be removably associated
with the evacuation opening 21 formed in the roof 13, is of the known type and is
therefore not described in detail.
[0108] Said extraction module 105 is present, in particular, when the fumes are not extracted
through the first feeding group 102a for preheating the charge material in the solid
state fed by the latter.
[0109] As already mentioned, if, in particular, the furnace 10 is used in the converter
mode, it is possible to seal all of the openings (deslagging opening 15, tapping opening
16, first inlet opening 17a, second inlet opening 17b, charge opening 20 except for
the evacuation opening 21) and/or their connection to the relative casting and slagging
systems and modules or feeding groups, in order to at least partially recover the
gases generated during some phases of the reduction process, rich in CO, that can
be used as fuel (with a low calorific value) in other steelmaking processes.
[0110] The extraction module 105, moreover, can be conveniently equipped with thermal energy
recovery systems of the gases leaving the furnace, for example for the production
of vapour, which can take place with various systems, comprising,
inter alia, "cooled tube" systems (ECS - Evaporative Cooling System) and heat exchangers (WHB
- Waste Heat Boiler).
[0111] The thermal energy of the fumes extracted from the furnace 10 can also be recovered
in chemical processes not strictly linked to steelmaking processes; the heat of said
fumes, for example, can be recovered in chemical reactors for the cracking of hydrocarbons
for the production of combustible fluids.
[0112] As already specified above, the plant 100 is of the modular type and can be flexibly
configured for conducting production processes of steel or cast iron in the molten
state in relation to the availability of electric energy and types of raw materials
available.
[0113] The plant 100 can generally be set up in two main configurations.
[0114] In a first configuration, the plant 100 is set up so as to have a high short-term
flexibility, i.e. so as to allow a variation in its arrangement from campaign to campaign
(wherein each campaign comprises cycles of a few hundreds of castings, equivalent
to a few weeks of operation). In this case, the upper shell 12 is dimensioned so as
to make the furnace 10 suitable for operating as a converter (i.e.
H ranging from
0.8D to
1,25D) and it is not substituted in the passage of the furnace 10 between the two main
operating modes (i.e. EAF/Converter). With this dimensioning of the furnace 10 and
in particular the upper shell 12, also in the presence of particularly reactive processes
(reduction of a charge prevalently composed of liquid cast iron, as when the furnace
10 is operating in the converter mode), the consequences of a possible development
of high effervescence (projection of molten material against the roof 13 and in the
mouth of the evacuation opening 21 of the fumes) can be avoided.
[0115] In a second configuration, the plant 100 is set up so as to have a high long-term
flexibility, in the order of a few tens of campaigns. In this case, the furnace 10
and in particular the upper shell 12 is initially dimensioned for operating in the
converter or EAF mode and is subsequently substituted or in any case modified when
the operating mode is to be changed. Typically, the furnace 10 is initially configured
for prevalently operating as a converter and subsequently modified for prevalently
operating as an EAF. This takes place, for example, when the plant 100 is installed
in countries that have high integral-cycle productions of cast iron (in blast furnaces)
and in which the steel scrap becomes available at competitive prices.
[0116] The plant 100 can therefore be adapted, in the short or long term, in relation to
the availability of energy and raw materials, without revolutionizing the whole plant,
but only adding or substituting the necessary modules.
[0117] Some possible configurations of the plant 100 are described hereunder.
[0118] The plant 100 can be configured for steel production starting from a mixture of raw
materials constituted for the whole of the charge material in the solid state prevalently
consisting of scrap with which DRI, HDRI, HBI and/or pig iron fed in continuous into
the furnace 10, can be mixed.
[0119] In this case, therefore, the furnace 10 is configured for operating in the EAF mode
and, advantageously, but not necessarily, the upper shell 12 is dimensioned so that
the overall height
H of the vessel ranges from
0.70D to
0.80D, wherein
D is the diameter of the lower shell 11.
[0120] The passage opening 18 of the roof 13 is associated with the completion element 19
(refractory roof "delta") through whose pass-through holes respective electrodes E
can be inserted.
[0121] The evacuation opening 21 of the roof 13 is closed and the charge opening 20 of the
roof 13 is opened for feeding, through the same, charge material in the solid state
such as DRI, ground scrap and/or alloying materials and/or additives.
[0122] The first inlet opening 17a of the upper shell 12 is opened for feeding, through
the same, charge material in the solid state (scrap possibly mixed with DRI and/or
pig iron), whereas the possible second inlet opening 17b for feeding charge material
in the molten state, is closed.
[0123] The plant 100 therefore comprises the following active operating modules:
- the power supply module of electric energy 101,
- the feeding module of charge material in the solid state 102 for feeding in continuous
charge material in the solid state into the furnace 10 and in turn comprising:
- the first feeding group 102a, advantageously of the type Consteel®, which is coupled with the first inlet opening 17a for feeding, through the same,
charge material in the solid state (scrap possibly mixed with DRI and/or pig iron),
- the second feeding group 102b, for feeding in continuous, through the same, charge
material in the solid state (DRI, ground scrap, alloying materials) and which is coupled
with the charge opening 20 of the roof 13 for feeding, through the same, charge material
in the solid state.
[0124] In this configuration of the plant 100, the fumes generated inside the furnace 10
during the production process are evacuated through the first feeding group 102a for
preheating the respective charge material in the solid state.
[0125] In this configuration of the plant 100, the feeding module of charge material in
the liquid state 103 is absent or in any case not active.
[0126] The plant 100 thus configured is suitable for the production in continuous of steel
starting from a mixture of raw materials in the solid state fed continuously to the
furnace operating in the EAF mode.
[0127] In an alternative configuration embodiment, the plant 100 is configured for the production
of steel starting from a mixture of raw materials in the solid state fed prevalently
batchwise only through the roof 13 and the furnace 10 operates in the EAF mode. In
this case:
- the vessel, advantageously, but not necessarily, has an overall height H ranging from 0.70D to 0.80D,
- the passage opening 18 of the roof 13 is associated with the completion element 19
(refractory roof "delta") through whose pass-through holes 19a respective electrodes
E can be inserted,
- the evacuation opening 21 of the roof 13 is open and
- both of the inlet openings 17a, 17b of the upper shell 12 are closed.
[0128] The plant 100 comprises the following active operating modules:
- the power supply module of electric energy 101,
- at least the feeding module of charge material in the solid state for the batch feeding
(for example with baskets) of charge material in the solid state (in particular scrap)
into the furnace 10 through the top of the vessel with the roof 13 open, in addition
to the second feeding group 102b for feeding charge material in the solid state (of
the type DRI, alloying materials and the like) through the charge opening 20 of the
roof 13,
- the extraction module of the fumes 105 generated inside the furnace 10 and which is
associated with the evacuation opening 21 of the roof 13.
[0129] In this configuration of the plant 100, the charge material in the solid state comprises,
for example, a mixture of DRI and scrap and solid pig iron and scrap possibly containing
binders.
[0130] In this configuration of the plant 100, the feeding module of charge material in
the liquid state 103 and the first feeding group 102a for the continuous feeding of
charge material in the solid state, are absent or in any case not active.
[0131] The plant 100 thus configured is suitable for steel production starting from a mixture
of raw materials in the solid state fed batchwise into the furnace operating in the
EAF mode.
[0132] In a further possible alternative configuration, the plant 100 can be set up for
producing steel starting from a mixture of raw materials composed of charge material
in the solid state in a quantity equal to or higher than 25% and charge material in
the liquid state in a quantity equal to or lower than 75%.
[0133] The charge material in the solid state prevalently consists of scrap which can be
mixed with DRI and/or pig iron fed in continuous into the furnace 10.
[0134] The charge material in the liquid state is composed of liquid cast iron fed in continuous
to the furnace.
[0135] In this case:
- the passage opening 18 of the roof 13 is open and associated with the completion element
19 (refractory roof "delta") for the passage through the same of at least one electrode,
- the evacuation opening 21 of the roof 13 is closed and the charge opening 20 of the
roof 13 for feeding, through the same, charge material in the solid state, is open,
- the first inlet opening 17a of the upper shell 12 for feeding, through the same, charge
material in the solid state, is open and the second inlet opening 17b of the upper
shell 12 for feeding, through the same, charge material in the molten state, is open.
[0136] The plant 100 comprises the following active operating modules:
- the power supply module of electric energy 101,
- the feeding module of charge material in the solid state and in turn comprising:
- a first feeding group 102a of the type Consteel® which is associated with the first inlet opening 17a for feeding, through the same,
charge material in the solid state,
- a second feeding group 102b which is associated with the charge opening 20 for feeding,
through the same, charge material in the solid state,
- the feeding module of charge material in the molten state 103 whose feeding group
103a is associated with the second inlet opening 17b for feeding, through the same,
charge material in the molten state.
[0137] The fumes generated inside the furnace during the production process of said molten
metal are evacuated through the first feeding group 102a for preheating the respective
charge material in the solid state.
[0138] Figure 7 shows a plant 100 configured as described above for the production of steel
starting from a mixture of raw materials composed for about 90% of charge material
in the solid state and for 10% of charge material in the liquid state.
[0139] Figure 8 shows a variant of the plant 100 of figure 7 configured for the production
of steel starting from a mixture of raw materials composed for about 50% of charge
material in the solid state and for 50% of charge material in the liquid state.
[0140] This variant differs from that shown in Figure 7 in the length of the first feeding
group 102a (Consteel
®).
[0141] In a further possible alternative configuration, the plant 100 can be set up for
producing steel starting from a mixture of raw materials composed of charge material
in the solid state, fed batchwise only through the roof 13, in a quantity equal to
or higher than 25% and charge material in the liquid state in a quantity equal to
or lower than 75%.
[0142] The charge material in the solid state prevalently consists of scrap, which can be
mixed with DRI and/or pig iron which however are fed in continuous to the furnace
10.
[0143] The charge material in the liquid state is composed of liquid cast iron fed in continuous
to the furnace.
[0144] In this case:
- the passage opening 18 of the roof 13 is open and associated with the completion element
19 (refractory roof "delta") for the passage through the same of at least one electrode,
- the evacuation opening 21 of the roof 13 is open and the charge opening 20 of the
roof 13 for feeding, through the same, charge material in the solid state, is open,
the first inlet opening 17a of the upper shell 12 for feeding, through the same, charge
material in the solid state, is closed and the second inlet opening 17b of the upper
shell 12 for feeding, through the same, charge material in the molten state, is open.
[0145] The plant 100 comprises the following active operating modules:
- the power supply module of electric energy 101,
- at least the feeding module of charge material in the solid state for the batch feeding
(for example with baskets) of charge material in the solid state (in particular scrap)
into the furnace 10 through the top of the vessel with the roof 13 open, in addition
to the second feeding group 102b for feeding charge material in the solid state (of
the type DRI and the like) through the charge opening 20 of the roof 13,
- the extraction module of the fumes 105 generated inside the furnace 10 and which is
associated with the evacuation opening 21 of the roof 13,
- the feeding module of charge material in the molten state 103 whose feeding group
103a is associated with the second inlet opening 17b for feeding, through the same,
charge material in the molten state.
[0146] In this configuration of the plant 100, the charge material in the solid state comprises,
for example, a mixture of DRI and scrap or solid pig iron and scrap possibly containing
binders.
[0147] In this configuration, the first feeding group 102a for the continuous feeding of
charge material in the solid state is absent or in any case not active.
[0148] The fumes generated inside the furnace during the production process of said molten
metal are evacuated through the evacuation opening 21 of the roof 13 and the fume
extraction module 105 associated therewith.
[0149] In a further possible configuration, the plant 100 is configured for the production
of cast iron starting from charge material in the solid state consisting of DRI with
a Carbon content >5%.
[0150] In this case:
- the vessel, advantageously, but not necessarily, has an overall height H ranging from 0.70D to 0.80D,
- the passage opening 18 of the roof 13 is open and associated with the completion element
19 (refractory roof "delta") for the passage through the same of at least one electrode
E,
- the evacuation opening 21 of the roof 13 is open,
- the charge opening 20 of the roof 13 is open for feeding, through the same, charge
material in the solid state,
- the inlet openings 17a, 17b of the upper shell 12 are closed or in any case absent.
[0151] In this configuration, the plant 100 comprises the following active operating modules:
- the power supply module of electric energy 101,
- a feeding module of charge material in the solid state for feeding charge material
in the solid state into the furnace through the roof and/or through the charge opening
20 of the roof 13, said module comprising in particular at least the second feeding
group 102b for feeding charge material in the solid state through the charge opening
20 of the roof 13,
- the extraction module of the fumes 105 which is associated with the evacuation opening
21.
[0152] The first feeding group 102a for the continuous feeding of charge material in the
solid state and the module for feeding of charge material in the liquid state 103
are absent or in any case inactive.
[0153] In a further possible configuration, the plant 100 is configured for the production
of steel starting from a mixture of raw materials composed of charge material in the
solid state in a quantity equal to or lower than 25% and charge material in the liquid
state in a quantity equal to or higher than 75%.
[0154] The charge material in the solid state comprises DRI, HDRI, HBI, solid pig iron and
scrap alone or in a mixture with one another in a percentage equal to or lower than
25% of the total charge material and is fed in continuous to the furnace 10.
[0155] The charge material in the liquid state consists of liquid cast iron fed to the furnace
preferably and substantially in continuous.
[0156] In this case:
- the vessel, advantageously, but not necessarily, has an overall height H ranging from 0.80D to 1.25D,
- the passage opening 18 of the roof 13 is closed,
- the evacuation opening 21 of the roof 13 is closed,
- the charge opening 20 of the roof 13 is open for feeding, through the same, charge
material in the solid state,
- the first inlet opening 17a of the upper shell 12 is open for the continuous feeding,
through the same, of charge material in the solid state and
- the second inlet opening 17b of the upper shell 12 is open for the continuous feeding,
through the same, of charge material in the molten state.
[0157] In this configuration, the plant 100 comprises the following active operating modules:
- the feeding module of charge material in the solid state 102 and in turn comprising:
- a first feeding group 102a of the Consteel® type which is associated with the first inlet opening 17a for feeding, through the
same, charge material in the solid state,
- the second feeding group 102b which is associated with the charge opening 20 of the
roof 13 for feeding, through the same, charge material in the solid state,
- the feeding module of charge material in the molten state 103 comprising the feeding
group 103a which is associated with the second inlet opening 17b for feeding, through
the same, charge material in the molten state.
[0158] The fumes generated inside the furnace are evacuated through the first feeding group
102a for preheating the respective charge material in the solid state.
[0159] In this case, due to the high percentage of liquid cast iron, the power supply module
of electric energy 101 is absent or in any case inactive.
[0160] A possible configuration of this kind is shown in Figure 9.
[0161] In a further possible alternative configuration, the plant 100 is configured for
the production of steel starting from a mixture of raw materials consisting of charge
material in the solid state in a quantity equal to or lower than 25% and charge material
in the liquid state in a quantity equal to or higher than 75%, wherein the charge
material in the solid state is fed exclusively through the roof of the furnace.
[0162] With respect to the configuration described above with reference to Figure 9, in
this case, the first inlet opening 17a is closed and the first feeding group 102a
is absent or in any case not active, the fumes being evacuated through the evacuation
opening 21 of the roof associated with the extraction module 105.
[0163] In all of the embodiments described above, the injection group, the injectors 22
of which inject oxygen and other gaseous or powder raw materials (lime, carbon, dolo
lime, etc.) into the furnace 10, is active.
[0164] In practice, it has been found that the furnace and plant according to the present
invention have achieved the intended objectives.
[0165] The furnace and plant thus conceived can undergo numerous modifications and variants,
all within the scope of the invention, furthermore, all the details can be substituted
by technically equivalent elements.
[0166] In practice, the materials used, as also the dimensions, can vary according to technical
requirements.
1. A metallurgical furnace (10) of the convertible type to an electric arc furnace or
to a converter for conducting production processes for the production of metals in
the molten state, in particular steel or cast iron,
characterized in that it comprises:
- a vessel comprising:
- a lower shell (11) for containing the metal bath, said metal bath being composed
of molten metal and an overlying layer of slag, wherein said lower shell (11) is tiltingly
supported and is provided with a deslagging opening (15) for evacuating the slag overlying
the molten metal and with a tapping opening (16) for tapping the molten metal,
- a upper shell (12) removably positioned on said lower shell (11) and provided with
- a first inlet opening (17a) for feeding, through the same, charge material in the
solid state and which can be associated with a first feeding group (102a) for the
continuous feeding of said charge material in the solid state and/or
- a second inlet opening (17b) for feeding, through the same, charge material in the
molten state and which can be associated with a feeding group (103a) for the continuous
feeding of said charge material in the molten state,
- a closing roof (13) for the upper closing of said vessel, wherein said closing roof
(13) is removably positioned above said upper shell (12) and is provided with a passage
opening (18) for the passage, through the same, of at least one electrode (E), at
least one charge opening (20) for feeding, through the same, charge material in the
solid state, and at least one evacuation opening (21) for discharging the gas fumes
generated inside said furnace (10) during the production process,
- wherein at least one of said first inlet opening (17a), said second inlet opening
(17b), said passage opening (18), said charge opening (20) and said evacuation opening
(21) is closed or can be associated with a closing element of the removable type,
- wherein said lower shell (11) has a diameter D and said vessel has an overall height H ranging from 0.70D to 1.25D,
said furnace (10) being equipped with a group of injectors (22) for the injection
of oxygen and other gaseous or powder raw materials into said furnace (10), wherein
said injectors (22) are inserted in said upper shell (12) at the lateral wall thereof.
2. The metallurgical furnace (10) according to claim 1, characterized in that said lower shell (11) has a diameter D and said vessel has an overall height H ranging from 0.70D to 0.80D if the furnace is used as an electric arc furnace.
3. The metallurgical furnace (10) according to claim 1, characterized in that said lower shell (11) has a diameter D and said vessel has an overall height H ranging from 0.80D to 1.25D if the furnace is used as a converter.
4. The metallurgical furnace (10) according to any one of the preceding claims, characterized in that, S being the extension in m2 of the free surface of said metal bath, it meets the condition according to which,
R being the ratio between the flow-rate, expressed as m3/min of carbon monoxide (PCO) generated during the decarburization of the metal bath for the production of steel
or cast iron and said extension S, said ratio R(PCO/S) is ≥ 16.
5. The metallurgical furnace (10) according to any one of the preceding claims, characterized in that, Lbmax being the maximum level that can be reached by the metal bath contained in said lower
shell (11), the vertical distance h between Lbmax and the lower edge of said deslagging opening (15) ranges from 0.055D to 0.077D.
6. The metallurgical furnace (10) according to one or more of the previous claims, characterized in that Lbmax being the maximum level that can be reached by the metal bath contained in said lower
shell, the vertical distance h' between Lbmax and the lower edge of said at least one inlet opening (17a) ranges from 1.6m to 2.2m, wherein said inlet opening is provided for the entry, through the same, of charge
material in the solid state.
7. The metallurgical furnace (10) according to one or more of the previous claims, characterized in that the maximum height dmax of said roof (13) with respect to said upper shell (12) ranges from 0.9m to 2m.
8. The metallurgical furnace (10) according to one or more of the previous claims, characterized in that it comprises a completion element (19) of said closing roof (13) which can be removably
associated with said passage opening (18) for the passage, through the same, of at
least one electrode (E), wherein said completion element (19) comprises at least one
pass-through hole (19a) for the passage, through the same, of at least one electrode.
9. The metallurgical furnace (10) according to claim 8, characterized in that it comprises a closing body (23) removably associated with said closing roof (13)
or said completion element (19) for closing said passage opening (18) or said at least
one pass-through hole (19a), respectively.
10. The metallurgical furnace (10) according to one or more of the previous claims, characterized in that said injection group comprises at least three injectors (22).
11. A modular metallurgical
plant (100) for conducting production processes of molten metal, in particular steel or
cast iron, comprising a metallurgical furnace (10) according to one or more of the
previous claims and at least one operating module selected from the group comprising:
- a power supply module of electric energy (101) for supplying electric energy to
said metal bath and comprising at least one electrode (E) removably insertable into
said vessel through said passage opening (18) of said closing roof (13),
- a feeding module for feeding charge material in the solid state (102) for the continuous
feeding of charge material in the solid state into said furnace and, in turn, comprising
at least one feeding group of charge material in the solid state selected from
- a first feeding group (102a) for the continuous feeding of said charge material
in the solid state which can be removably associated with said first inlet opening
(17a) formed in said upper shell (12) for feeding, through the same, charge material
in the solid state,
- a second feeding group (102b) for the continuous feeding of said charge material
in the solid state which can be removably associated with said at least one charge
opening (20) obtained in said closing roof (13) for feeding, through the same, charge
material in the solid state,
- a feeding group of charge material in the molten state (103) for the feeding of
charge material in the molten state into said furnace and comprising a feeding group
(103a) for feeding material in the molten state, which can be removably associated
with said second inlet opening (17b) obtained in said upper shell (12) for feeding,
through the same, charge material in the molten state,
- a feeding module of charge material in the solid state for the batch feeding of
charge material in the solid state into said furnace through said at least one charge
opening (20) obtained in said closing roof (13),
- an extraction module of fumes (105) for the extraction of fumes generated inside
said furnace during the production process of said molten metal and which can be removably
associated with said evacuation opening (21) obtained in said closing roof (13).
12. The metallurgical furnace (100) according to claim 11, for the production of steel
or cast iron, wherein said charge material in the molten state is cast iron in the
molten state and wherein said charge material in the solid state comprises scrap,
DRI (direct reduced iron), HDRI (hot direct reduced iron), pig iron and HBI (hot briquetted
iron), alone or in a mixture with two or more of each other, wherein the charge material
fed to said furnace comprises charge material in the molten state and/or charge material
in the solid state, alone or mixed with each other.
13. The metallurgical plant (100) according to claim 12 for the production of steel starting
from charge material in the solid state only, wherein:
- the closing roof (13) of said metallurgical furnace has said passage opening (18)
open and associated with a completion element (19) comprising at least one pass-through
hole (19a) for the passage through the same of at least one electrode (E), said evacuation
opening (21) closed and said at least one charge opening (20) for feeding, through
the same, charge material in the solid state, open,
- said upper shell (12) has a first inlet opening (17a) for feeding, through the same,
charge material in the solid state, open, and a possible second inlet opening (17b)
for feeding, through the same, charge material in the molten state, closed,
and wherein said metallurgical plant (100) comprises the following active operating
modules:
- a power supply module of electric energy (101) to said metal bath and comprising
at least one electrode (E) which can be removably inserted into said vessel through
said pass-through hole (19a) of said completion element (19),
- a feeding module of charge material in the solid state (102) for the continuous
feeding of charge material in the solid state into said furnace, in turn comprising:
- a first feeding group (102a) for the continuous feeding of said charge material
in the solid state associated with said first inlet opening (17a) obtained in said
upper shell (12) for feeding, through the same, charge material in the solid state,
wherein said charge material in the solid state is scrap or a mixture of scrap and
solid pig iron,
- a second feeding group (102b) for the continuous feeding of said charge material
in the solid state associated with said at least one charge opening (20) obtained
in said roof for feeding, through the same, charge material in the solid state, wherein
said charge material in the solid state is DRI or solid cast iron or binders, alone
or mixed with each other,
wherein the fumes generated inside said furnace during the production process are
evacuated through said first feeding group (102a) for preheating the respective charge
material in the solid state.
14. The metallurgical plant (100) according to claim 12 for the production of steel starting
from charge material in the solid state only, wherein:
- the closing roof (13) of said metallurgical furnace has said passage opening (18)
open and associated with a completion element (19) comprising at least one pass-through
hole (19a) for the passage, through the same, of at least one electrode (E), said
evacuation opening (21) open and said at least one charge opening (20) for feeding,
through the same, charge material in the solid state, open,
- said upper shell (12) has said first inlet opening (17a) and said second inlet opening
(17b) for feeding, through the same, charge material in the solid state or in the
molten state, closed,
and wherein said metallurgical plant (100) comprises the following active operating
modules:
- a power supply module of electric energy (101) to said metal bath and comprising
at least one electrode (E) which can be removably inserted in said vessel through
said pass-through hole (19a) of said completion element (19),
- at least one feeding module of charge material in the solid state for the batch
feeding of charge material in the solid state into said furnace through said at least
one charge opening (20) obtained in said closing roof (13) and/or through the top
of said vessel with the closing roof (13) open,
- an extraction module of fumes (105) for the extraction of fumes generated inside
said furnace during the production process of said molten metal and associated with
said evacuation opening (21) obtained in said closing roof (13).
wherein said charge material in the solid state comprises a mixture of DRI and scrap
or solid pig iron and scrap.
15. The metallurgical plant (100) according to claim 12 for the production of cast iron
starting from charge material in the solid state only, wherein:
- the closing roof (13) of said metallurgical furnace has said passage opening (18)
open for the passage, through the same, of at least one electrode (E), said evacuation
opening (21) open and said at least one charge opening (20) for feeding, through the
same, charge material in the solid state, open,
- said upper shell (12) has said first inlet opening (17a) and said second inlet opening
(17b) for feeding, through the, charge material in the solid state, or in the molten
state, closed,
and wherein said metallurgical plant (100) comprises the following operating modules:
- a power supply module of electric energy (101) to said metal bath and comprising
at least one electrode (E) which can be removably inserted into said vessel through
said passage opening (18) of said closing roof (13),
- a feeding module of charge material in the solid state for feeding charge material
in the solid state into said furnace through said at least one charge opening (20)
obtained in said closing roof (13) and/or through the top of said vessel with the
closing roof (13) open,
- an extraction module of fumes (105) for the extraction of fumes generated inside
said furnace during the production process of said molten metal and associated with
said evacuation opening (21) obtained in said closing roof (13),
wherein said charge material in the solid state consists of DRI with a Carbon percentage
higher than or equal to 5% mixed with possible binders.
16. The metallurgical plant (100) according to claim 12 for the production of steel starting
from charge material in the solid state and in the liquid state, wherein:
- the closing roof (13) of said metallurgical furnace has said passage opening (18)
for the passage, through the same, of at least one electrode, closed, said evacuation
opening (21) closed and said at least one charge opening (20) for feeding, through
the same, charge material in the solid state, open,
- said upper shell (12) has said first inlet opening (17a) for feeding, through the
same, charge material in the solid state, open, and said second inlet opening (17b)
for feeding, through the same, charge material in the molten state, open,
and wherein said metallurgical plant (100) comprises the following active operating
modules:
- a feeding module of charge material in the solid state (102) for the continuous
feeding of charge material in the solid state into said furnace and, in turn, comprising:
- a first feeding group (102a) for the continuous feeding of said charge material
in the solid state associated with said first inlet opening (17a) obtained in said
upper shell (12) for feeding, through the same, charge material in the solid state,
- a second feeding group (102b) for the continuous feeding of said charge material
in the solid state associated with said at least one charge opening (20) obtained
in said closing roof (13) for the feeding, through the same, of charge material in
the solid state,
wherein said charge material in the solid state comprises DRI, HDRI, HBI, solid pig
iron and scrap alone or mixed with each other in a percentage equal to or lower than
25% of the total charge material, and
wherein the fumes generated inside said furnace during the production process of said
molten metal are evacuated through said first feeding group (102a) for preheating
the respective charge material in the solid state,
- a feeding module of charge material in the molten state (103) for feeding charge
material in the molten state inside said furnace and comprising a feeding group (103a)
for feeding material in the molten state associated with said second inlet opening
(17b) obtained in said upper shell (12) for feeding, through the same, charge material
in the molten state, consisting of molten cast iron in a percentage equal to or higher
than 75% of the total charge material.
17. The metallurgical plant (100) according to claim 12 for the production of steel starting
from charge material in the solid state and in the liquid state, wherein:
- the closing roof (13) of said metallurgical furnace has said passage opening (18)
for the passage, through the same, of at least one electrode, closed, said evacuation
opening (21) open, and said at least one charge opening (20) for feeding, through
the same, charge material in the solid state, open,
- said upper shell (12) has said second inlet opening (17b) for feeding, through the
same, charge material in the molten state, open, said possible first inlet opening
(17a) for feeding, through the same, charge material in the solid state, being closed,
and wherein said metallurgical plant (100) comprises the following active operating
modules:
- at least one feeding module of charge material in the solid state for the batch
feeding of charge material in the solid state into said furnace through said at least
one charge opening (20) obtained in said closing roof (13) and/or through the top
of said vessel with said closing roof (13) open, wherein said charge material in the
solid state comprises DRI, HDRI, HBI, solid pig iron and scrap alone or mixed with
each other in a percentage equal to or lower than 25% of the total charge material,
and
- a feeding module of charge material in the molten state (103) for feeding charge
material in the molten state into said furnace and comprising a feeding group (103a)
for feeding material in the molten state associated with said second inlet opening
(17b) obtained in said upper shell (12) for feeding, through the same, charge material
in the molten state, said charge material in the molten state being composed of molten
cast iron in a percentage equal to or higher than 75% of the total charge material.
18. The metallurgical plant (100) according to claim 12 for the production of steel starting
from charge material in the solid state and in the liquid state, wherein:
- the closing roof (13) of said metallurgical furnace has said passage opening (18)
for the passage, through the same, of at least one electrode, open, said evacuation
opening (21) closed, and said at least one charge opening (20) for feeding, through
the same, charge material in the solid state, open,
- said upper shell (12) has said first inlet opening (17a) for feeding, through the
same, charge material in the solid state, open, and said second inlet opening (17b)
for feeding, through the same, charge material in the molten state, open,
and wherein said metallurgical plant (100) comprises the following active operating
modules:
- a power supply of electric energy (101) to said metal bath and comprising at least
one electrode that can be removably inserted into said vessel through said passage
opening (18) of said closing roof (13),
- a feeding module of charge material in the solid state (102) for the continuous
feeding of charge material in the solid state into said furnace and in turn comprising:
- a first feeding group (102a) for the continuous feeding of said charge material
in the solid state removably associated with said first inlet opening (17a) obtained
in said upper shell (12) for feeding, through the same, charge material in the solid
state,
- a second feeding group (102b) for the continuous feeding of said charge material
in the solid state removably associated with said at least one charge opening (20)
obtained in said closing roof (13) for the feeding, through the same, of charge material
in the solid state,
- wherein said charge material in the solid state comprises DRI, HDRI, HBI, solid
pig iron and scrap alone or mixed with each other in a percentage equal to or higher
than 25% of the total charge material, and
wherein the fumes generated inside said furnace during the production process of said
molten metal are evacuated through said first feeding group (102a) for preheating
the respective charge material in the solid state,
- a feeding module of charge material in the molten state (103) for feeding charge
material in the molten state into said furnace and comprising a feeding group (103a)
for feeding material in the molten state associated with said second inlet opening
(17b) obtained in said upper shell (12) for feeding, through the same, charge material
in the molten state, consisting of molten cast iron in a percentage equal to or lower
than 75% of the total charge material.
19. The metallurgical plant (100) according to claim 12 for the production of steel starting
from charge material in the solid state and in the liquid state, wherein:
- the closing roof (13) of said metallurgical furnace has said passage opening (18)
for the passage, through the same, of at least one electrode (E), open, said evacuation
opening (21) open, and said at least one charge opening (20) for feeding, through
the same, charge material in the solid state, open,
- said upper shell (12) has said second inlet opening (17b) for feeding, through the
same, charge material in the molten state, open, said possible first inlet opening
(17a) for feeding, through the same, charge material in the solid state, being closed,
and wherein said metallurgical plant (100) comprises the following active operating
modules:
- a power supply of electric energy (101) to said metal bath and comprising at least
one electrode that can be removably inserted into said vessel through said passage
opening (18) of said closing roof (13),
- a feeding module of charge material in the solid state for the batch feeding of
charge material in the solid state into said furnace through said at least one charge
opening (20) obtained in said roof and/or through the top of said vessel with said
closing roof (13) open, wherein said charge material in the solid state comprises
DRI, HDRI, HBI, solid pig iron and scrap alone or mixed with each other in a percentage
equal to or higher than 25% of the total charge material, and
- a feeding module of charge material in the molten state (103) for feeding charge
material in the molten state into said furnace and comprising a feeding group (103a)
for feeding material in the molten state associated with said second inlet opening
(17b) obtained in said upper shell for feeding, through the same, charge material
in the molten state, said charge material in the molten state consisting of molten
cast iron in a percentage equal to or lower than 75% of the total charge material.
1. Metallurgischer Ofen (10) des Typs, der in einen elektrischen Lichtbogenofens oder
in einen Konverter zur Durchführung von Produktionsprozessen zur Herstellung von Metallen
im geschmolzenen Zustand, insbesondere von Stahl oder Gusseisen umwandelbar ist,
dadurch gekennzeichnet, dass er Folgendes umfasst:
- ein Gefäß mit:
- einer unteren Schale (11) zur Aufnahme des Metallbades, wobei das Metallbad aus
geschmolzenem Metall und einer darüberliegenden Schlackenschicht besteht, wobei die
untere Schale (11) kippbar gelagert ist und mit einer Entschlackungsöffnung (15) zum
Entfernen der über dem geschmolzenen Metall liegenden Schlacke und mit einer Abstichöffnung
(16) zum Abstich des geschmolzenen Metalls versehen ist,
- einer oberen Schale (12), die abnehmbar auf der unteren Schale (11) angeordnet ist
und Folgendes aufweist
- eine erste Einlassöffnung (17a) zum Zuführen von Füllmaterial in festem Zustand
durch dieselbe, die mit einer ersten Zuführungsgruppe (102a) für die kontinuierliche
Zuführung des Füllmaterials in festem Zustand verbunden sein kann, und/oder
- eine zweite Einlassöffnung (17b) zum Zuführen von Beschickungsmaterial im geschmolzenen
Zustand durch dieselbe, die mit einer Zuführungsgruppe (103a) für die kontinuierliche
Zuführung des Beschickungsmaterials im geschmolzenen Zustand verbunden werden kann,
- ein Verschlussdach (13) für den oberen Verschluss des Gefäßes, wobei das Verschlussdach
(13) abnehmbar über dem oberen Mantel (12) positioniert ist und mit einer Durchgangsöffnung
(18) für den Durchgang von mindestens einer Elektrode (E), mindestens einer Beschickungsöffnung
(20) zum Zuführen von Beschickungsmaterial im festen Zustand durch dieselbe und mindestens
einer Entfernungsöffnung (21) zum Abführen der während des Produktionsprozesses im
Inneren des Ofens (10) erzeugten Gasdämpfe versehen ist,
- wobei mindestens eine der ersten Einlassöffnung (17a), der zweiten Einlassöffnung
(17b), der Durchgangsöffnung (18), der Beschickungsöffnung (20) und der Entfernungsöffnung
(21) verschlossen ist oder mit einem abnehmbaren Verschlusselement verbunden werden
kann,
- wobei die untere Schale (11) einen Durchmesser D und der Behälter eine Gesamthöhe H im Bereich von 0.70D bis 1.25D aufweist,
wobei der Ofen (10) mit einer Gruppe von Injektoren (22) für die Injektion von Sauerstoff
und anderen gasförmigen oder pulverförmigen Rohstoffen in den Ofen (10) ausgestattet
ist, wobei die Injektoren (22) in den oberen Mantel (12) an dessen Seitenwand eingesetzt
sind.
2. Metallurgischer Ofen (10) nach Anspruch 1, dadurch gekennzeichnet, dass der untere Mantel (11) einen Durchmesser D und das Gefäß eine Gesamthöhe H im Bereich von 0.70D bis 0.80D aufweist, wenn der Ofen als Elektrolichtbogenofen verwendet wird.
3. Metallurgischer Ofen (10) nach Anspruch 1, dadurch gekennzeichnet, dass der untere Schale (11) einen Durchmesser D und das Gefäß eine Gesamthöhe H im Bereich von 0.80D bis 1.25D aufweist, wenn der Ofen als Konverter verwendet wird.
4. Metallurgischer Ofen (10) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass S die Ausdehnung der freien Oberfläche des Metallbades in m2 ist und er die Bedingung erfüllt, dass R das Verhältnis zwischen dem Durchsatz, ausgedrückt in m3/min, von Kohlenmonoxid (PCO), das während der Entkohlung des Metallbades für die Herstellung von Stahl oder Gusseisen
erzeugt wird, und der Ausdehnung S ist, wobei das Verhältnis R(Pco/S) ≥ 16. ist.
5. Metallurgischer Ofen (10) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass, wenn Lbmax der maximale Pegel ist, den das in der unteren Schale (11) enthaltene Metallbad erreichen
kann, der vertikale Abstand h zwischen Lbmax und dem unteren Rand der Entschlackungsöffnung (15) zwischen 0.055D und 0.077D liegt.
6. Metallurgischer Ofen (10) nach einem oder mehreren der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass Lbmax der maximale Pegel ist, der von dem in der unteren Schale enthaltenen Metallbad erreicht
werden kann, der vertikale Abstand h'zwischen Lbmax und der Unterkante der mindestens einen Einlassöffnung (17a) im Bereich von 1.6m bis 2.2m liegt, wobei die Einlassöffnung für den Eintritt von Beschickungsmaterial in festem
Zustand durch dieselbe vorgesehen ist.
7. Metallurgischer Ofen (10) nach einem oder mehreren der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die maximale Höhe dmax des Daches (13) in Bezug auf den oberen Mantel (12) zwischen 0.9m und 2m liegt.
8. Metallurgischer Ofen (10) nach einem oder mehreren der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass er ein Abschlusselement (19) des Verschlussdaches (13) umfasst, das abnehmbar mit
der Durchgangsöffnung (18) verbunden werden kann, um mindestens eine Elektrode (E)
durch diese hindurchzuführen, wobei das Abschlusselement (19) mindestens ein Durchgangsloch
(19a) umfasst, um mindestens eine Elektrode durch dieses hindurchzuführen.
9. Metallurgischer Ofen (10) nach Anspruch 8, dadurch gekennzeichnet, dass er einen Verschlusskörper (23) umfasst, der abnehmbar mit dem Verschlussdach (13)
oder dem Abschlusselement (19) verbunden ist, um die Durchgangsöffnung (18) bzw. das
mindestens eine Durchgangsloch (19a) zu schließen.
10. Metallurgischer Ofen (10) nach einem oder mehreren der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die Injektionsgruppe mindestens drei Injektoren (22) umfasst.
11. Modulare metallurgische
Anlage (100) zur Durchführung von Produktionsprozessen von geschmolzenem Metall, insbesondere
Stahl oder Gusseisen, die einen metallurgischen Ofen (10) nach einem oder mehreren
der vorhergehenden Ansprüche und mindestens ein Betriebsmodul umfasst, ausgewählt
aus der Gruppe, die Folgendes umfasst:
- ein Stromversorgungsmodul für elektrische Energie (101) zur Versorgung des Metallbads
mit elektrischer Energie, das mindestens eine Elektrode (E) umfasst, die durch die
Durchgangsöffnung (18) des Verschlussdachs (13) herausnehmbar in den Behälter eingeführt
werden kann,
- ein Zuführungsmodul zum Zuführen von Beschickungsmaterial in festem Zustand (102)
zum kontinuierlichen Zuführen von Beschickungsmaterial in festem Zustand in den Ofen,
das seinerseits mindestens eine Zuführungsgruppe für Beschickungsmaterial in festem
Zustand umfasst, die ausgewählt ist aus
- einer ersten Zuführungsgruppe (102a) für die kontinuierliche Zuführung des Beschickungsmaterials
in festem Zustand, die abnehmbar mit der in der oberen Schale (12) ausgebildeten ersten
Einlassöffnung (17a) verbunden werden kann, um durch dieselbe Beschickungsmaterial
in festem Zustand zuzuführen,
- einer zweiten Zuführungsgruppe (102b) für die kontinuierliche Zuführung des Beschickungsmaterials
in festem Zustand, die abnehmbar mit der mindestens einen Beschickungsöffnung (20)
verbunden werden kann, die in dem Verschlussdach (13) erhalten wurde, um durch dieselbe
Beschickungsmaterial in festem Zustand zuzuführen,
- einer Zuführungsgruppe für Beschickungsmaterial im geschmolzenen Zustand (103) zum
Zuführen von Beschickungsmaterial im geschmolzenen Zustand in den Ofen, die eine Zuführungsgruppe
(103a) zum Zuführen von Material im geschmolzenen Zustand umfasst, die abnehmbar mit
der zweiten Einlassöffnung (17b) verbunden werden kann, die in der oberen Schale (12)
zum Zuführen von Beschickungsmaterial in geschmolzenem Zustand durch dieselbe erhalten
wird,
- ein Zuführungsmodul für festes Beschickungsmaterial für die chargenweise Beschickung
des Ofens mit festem Beschickungsmaterial durch die mindestens eine Beschickungsöffnung
(20), die in der Verschlussdach (13) ausgebildet ist,
- ein Rauchabzugsmodul (105) für den Abzug von Rauch, der im Inneren des Ofens während
des Herstellungsprozesses des geschmolzenen Metalls erzeugt wird, und das abnehmbar
mit der in dem Verschlussdach (13) erhaltenen Entfernungsöffnung (21) verbunden werden
kann.
12. Metallurgischer Ofen (100) nach Anspruch 11 zur Herstellung von Stahl oder Gusseisen,
wobei das Beschickungsmaterial in geschmolzenem Zustand Gusseisen in geschmolzenem
Zustand ist und wobei das Beschickungsmaterial in festem Zustand Schrott, DRI (direkt
reduziertes Eisen), HDRI (heißes direkt reduziertes Eisen), Roheisen und HBI (heißes
brikettiertes Eisen) umfasst, allein oder in einer Mischung mit zwei oder mehreren
von ihnen, wobei das dem Ofen zugeführte Beschickungsmaterial in geschmolzenem Zustand
und/oder Beschickungsmaterial in festem Zustand umfasst, allein oder miteinander gemischt.
13. Metallurgische Anlage (100) nach Anspruch 12 zur Herstellung von Stahl ausgehend von
Beschickungsmaterial nur in festem Zustand, wobei:
- das Verschlussdach (13) des metallurgischen Ofens die Durchgangsöffnung (18) offen
hat und mit einem Abschlusselement (19) verbunden ist, das mindestens ein Durchgangsloch
(19a) für den Durchgang von mindestens einer Elektrode (E) umfasst, die Entfernungsöffnung
(21) geschlossen ist und die mindestens eine Beschickungsöffnung (20) für die Zufuhr
von Beschickungsmaterial in festem Zustand durch sie offen ist,
- die obere Schale (12) eine erste Einlassöffnung (17a) zum Zuführen von Beschickungsmaterial
im festen Zustand offen, und eine mögliche zweite Einlassöffnung (17b) zum Zuführen
durch dieselbe von Beschickungsmaterial im geschmolzenen Zustand, geschlossen aufweist,
und wobei die metallurgische Anlage (100) die folgenden aktiven Betriebsmodule umfasst:
- ein Modul zur Versorgung des Metallbads mit elektrischer Energie (101), das mindestens
eine Elektrode (E) umfasst, die durch das Durchgangsloch (19a) des Abschlusselements
(19) herausnehmbar in den Behälter eingeführt werden kann,
- ein Zuführungsmodul für festes Beschickungsmaterial (102) für die kontinuierliche
Zuführung von festem Beschickungsmaterial in den Ofen, das seinerseits Folgendes umfasst:
- eine erste Zuführungsgruppe (102a) für die kontinuierliche Zuführung des Beschickungsmaterials
in festem Zustand, die mit der ersten Einlassöffnung (17a) verbunden ist, die in der
oberen Schale (12) erhalten wurde, um durch dieselbe Beschickungsmaterial in festem
Zustand zuzuführen, wobei das Beschickungsmaterial in festem Zustand Schrott oder
eine Mischung aus Schrott und festem Roheisen ist,
- eine zweite Zuführungsgruppe (102b) für die kontinuierliche Zuführung des Beschickungsmaterials
in festem Zustand, die mit der mindestens einen Beschickungsöffnung (20) verbunden
ist, die in dem Dach zum Zuführen von Beschickungsmaterial in festem Zustand durch
dasselbe hindurch erhalten wurde, wobei das Beschickungsmaterial in festem Zustand
DRI oder festes Gusseisen oder Bindemittel allein oder miteinander gemischt ist,
wobei die im Inneren des Ofens während des Produktionsprozesses erzeugten Dämpfe durch
die erste Zuführungsgruppe (102a) abgeleitet werden, um das jeweilige Beschickungsmaterial
im festen Zustand vorzuwärmen.
14. Metallurgische Anlage (100) nach Anspruch 12 zur Herstellung von Stahl ausgehend von
Beschickungsmaterial nur in festem Zustand, wobei:
- das Verschlussdach (13) des metallurgischen Ofens die Durchgangsöffnung (18) offen
hat und mit einem Abschlusselement (19) verbunden ist, das mindestens ein Durchgangsloch
(19a) für den Durchgang von mindestens einer Elektrode (E) aufweist, die Entfernungsöffnung
(21) offen ist und die mindestens eine Beschickungsöffnung (20) für die Zufuhr von
Beschickungsmaterial in festem Zustand durch diese offen ist,
- die obere Schale (12) die erste Einlassöffnung (17a) und die zweite Einlassöffnung
(17b) zum Zuführen von Beschickungsmaterial in festem Zustand oder in geschmolzenem
Zustand durch dieselbe geschlossen hat,
und wobei die metallurgische Anlage (100) die folgenden aktiven Betriebsmodule umfasst:
- ein Modul zur Versorgung des Metallbads mit elektrischer Energie (101), das mindestens
eine Elektrode (E) umfasst, die durch das Durchgangsloch (19a) des Abschlusselements
(19) herausnehmbar in den Behälter eingeführt werden kann,
- mindestens ein Zuführungsmodul für festes Beschickungsmaterial für die chargenweise
Zuführung des Ofens mit festem Beschickungsmaterial durch die mindestens eine Beschickungsöffnung
(20), die in dem Verschlussdach (13) ausgebildet ist, und/oder durch die Oberseite
des Behälters bei geöffnetem Verschlussdach (13),
- ein Rauchabzugsmodul (105) für den Abzug von Rauch, der im Inneren des Ofens während
des Herstellungsprozesses des geschmolzenen Metalls erzeugt wird und mit der in dem
Verschlussdach (13) ausgebildeten Entfernungsöffnung (21) verbunden ist.
wobei das Beschickungsmaterial im festen Zustand eine Mischung aus DRI und Schrott
oder festem Roheisen und Schrott umfasst.
15. Metallurgische Anlage (100) nach Anspruch 12 zur Herstellung von Gusseisen ausgehend
von Beschickungsmaterial nur im festen Zustand, wobei:
- das Verschlussdach (13) des metallurgischen Ofens die Durchgangsöffnung (18) für
den Durchgang mindestens einer Elektrode (E), die Entfernungsöffnung (21) und die
mindestens eine Beschickungsöffnung (20) zum Zuführen von Beschickungsmaterial in
festem Zustand durch dieselbe offen hat,
- die obere Schale (12) die erste Einlassöffnung (17a) und die zweite Einlassöffnung
(17b) zum Zuführen von Beschickungsmaterial in festem Zustand oder in geschmolzenem
Zustand durch diese geschlossen hat,
und wobei die metallurgische Anlage (100) die folgenden Betriebsmodule umfasst:
- ein Modul zur Versorgung des Metallbads mit elektrischer Energie (101), das mindestens
eine Elektrode (E) umfasst, die durch die Durchgangsöffnung (18) des Verschlussdachs
(13) herausnehmbar in den Behälter eingeführt werden kann,
- ein Zuführungsmodul für festes Beschickungsmaterial zum Zuführen von festem Beschickungsmaterial
in den Ofen durch die mindestens eine Beschickungsöffnung (20), die in dem Verschlussdach
(13) ausgebildet ist, und/oder durch die Oberseite des Behälters bei geöffnetem Verschlussdach
(13),
- ein Rauchabzugsmodul (105) für den Abzug von Rauch, der im Inneren des Ofens während
des Herstellungsprozesses des geschmolzenen Metalls erzeugt wird und mit der in dem
Verschlussdach (13) ausgebildeten Entfernungsöffnung (21) verbunden ist,
wobei das Beschickungsmaterial in festem Zustand aus DRI mit einem Kohlenstoffanteil
von 5 % oder mehr in Mischung mit möglichen Bindemitteln besteht.
16. Metallurgische Anlage (100) nach Anspruch 12 zur Herstellung von Stahl ausgehend von
Beschickungsmaterial im festen und im flüssigen Zustand, wobei:
- das Verschlussdach (13) des metallurgischen Ofens die Durchgangsöffnung (18) für
den Durchgang von mindestens einer Elektrode geschlossen, die Entfernungsöffnung (21)
geschlossen und die mindestens eine Beschickungsöffnung (20) für die Zufuhr von Beschickungsmaterial
in festem Zustand durch diese offen hat,
- die obere Schale (12) die erste Einlassöffnung (17a) zum Zuführen von Beschickungsmaterial
im festen Zustand durch dieselbe offen hat und die zweite Einlassöffnung (17b) zum
Zuführen von Beschickungsmaterial im geschmolzenen Zustand durch dieselbe offen hat,
und wobei die metallurgische Anlage (100) die folgenden aktiven Betriebsmodule umfasst:
- ein Zuführungsmodul für festes Beschickungsmaterial (102) für die kontinuierliche
Zuführung von festem Beschickungsmaterial in den Ofen, das seinerseits Folgendes umfasst:
- eine erste Zuführungsgruppe (102a) für die kontinuierliche Zuführung des Beschickungsmaterials
in festem Zustand, die mit der ersten Einlassöffnung (17a) verbunden ist, die in der
oberen Schale (12) erhalten wurde, um durch dieselbe Beschickungsmaterial in festem
Zustand zuzuführen,
- eine zweite Zuführungsgruppe (102b) für die kontinuierliche Zuführung des Beschickungsmaterials
in festem Zustand, die mit der mindestens einen Beschickungsöffnung (20) verbunden
ist, die in dem Verschlussdach (13) für die Zuführung von Beschickungsmaterial in
festem Zustand durch dasselbe hindurch erhalten wird,
wobei das Beschickungsmaterial im festen Zustand DRI, HDRI, HBI, festes Roheisen und
Schrott allein oder miteinander gemischt in einem Prozentsatz von 25 % oder weniger
des gesamten Beschickungsmaterials umfasst, und
wobei die während des Herstellungsprozesses des geschmolzenen Metalls im Ofen erzeugten
Dämpfe durch die erste Zuführungsgruppe (102a) zum Vorwärmen des jeweiligen Beschickungsmaterials
im festen Zustand abgeleitet werden,
- ein Zuführungsmodul für Beschickungsmaterial im geschmolzenen Zustand (103) zum
Zuführen von Beschickungsmaterial im geschmolzenen Zustand innerhalb des Ofens, das
eine Zuführungsgruppe (103a) zum Zuführen von Material im geschmolzenen Zustand umfasst,
die mit der zweiten Einlassöffnung (17b) verbunden ist, die in der oberen Schale (12)
erhalten wird, um durch dieselbe Beschickungsmaterial im geschmolzenen Zustand zuzuführen,
das aus geschmolzenem Gusseisen in einem Prozentsatz besteht, der gleich oder höher
als 75% des gesamten Beschickungsmaterials ist.
17. Metallurgische Anlage (100) nach Anspruch 12 zur Herstellung von Stahl ausgehend von
Beschickungsmaterial im festen und im flüssigen Zustand, wobei:
- das Verschlussdach (13) des metallurgischen Ofens die Durchgangsöffnung (18) für
den Durchgang mindestens einer Elektrode geschlossen, die Entfernungsöffnung (21)
offen und die mindestens eine Beschickungsöffnung (20) für die Zufuhr von Beschickungsmaterial
in festem Zustand durch sie offen hat,
- die obere Schale (12) die zweite Einlassöffnung (17b) zum Zuführen von Beschickungsmaterial
im geschmolzenen Zustand durch dieselbe offen hat, wobei die mögliche erste Einlassöffnung
(17a) zum Zuführen von Beschickungsmaterial im festen Zustand durch dieselbe geschlossen
ist,
und wobei die metallurgische Anlage (100) die folgenden aktiven Betriebsmodule umfasst:
- mindestens ein Zuführungsmodul für Beschickungsmaterial in festem Zustand für die
chargenweise Zuführung von Beschickungsmaterial in festem Zustand in den Ofen durch
die mindestens eine Beschickungsöffnung (20), die in dem Verschlussdach (13) erhalten
wird, und/oder durch die Oberseite des Gefäßes bei geöffnetem Verschlussdach (13),
wobei das Beschickungsmaterial in festem Zustand DRI, HDRI, HBI, festes Roheisen und
Schrott allein oder miteinander gemischt in einem Prozentsatz von 25 % oder weniger
des gesamten Beschickungsmaterials umfasst, und
- ein Zuführungsmodul für Beschickungsmaterial im geschmolzenen Zustand (103) zum
Zuführen von Beschickungsmaterial im geschmolzenen Zustand in den Ofen, das eine Zuführungsgruppe
(103a) zum Zuführen von Material im geschmolzenen Zustand umfasst, die mit der zweiten
Einlassöffnung (17b) verbunden ist, die in der oberen Schale (12) erhalten wurde,
um durch dieselbe Beschickungsmaterial im geschmolzenen Zustand zuzuführen, wobei
das Beschickungsmaterial im geschmolzenen Zustand aus geschmolzenem Gusseisen in einem
Prozentsatz besteht, der gleich oder höher als 75% des gesamten Beschickungsmaterials
ist.
18. Metallurgische Anlage (100) nach Anspruch 12 zur Herstellung von Stahl ausgehend von
Beschickungsmaterial im festen und im flüssigen Zustand, wobei:
- das Verschlussdach (13) des metallurgischen Ofens die Durchgangsöffnung (18) für
den Durchgang von mindestens einer Elektrode offen, die Entfernungsöffnung (21) geschlossen
und die mindestens eine Beschickungsöffnung (20) zum Zuführen von Beschickungsmaterial
in festem Zustand durch sie offen hat,
- die obere Schale (12) die erste Einlassöffnung (17a) zum Zuführen von Beschickungsmaterial
im festen Zustand durch dieselbe offen hat und die zweite Einlassöffnung (17b) zum
Zuführen von Beschickungsmaterial im geschmolzenen Zustand durch dieselbe offen hat,
und wobei die metallurgische Anlage (100) die folgenden aktiven Betriebsmodule umfasst:
- eine elektrische Energieversorgung (101) für das Metallbad, die mindestens eine
Elektrode umfasst, die durch die Durchgangsöffnung (18) des Verschlussdaches (13)
herausnehmbar in den Behälter eingeführt werden kann,
- ein Zuführungsmodul für festes Beschickungsmaterial (102) für die kontinuierliche
Zuführung von festem Beschickungsmaterial in den Ofen, das seinerseits Folgendes umfasst:
- eine erste Zuführungsgruppe (102a) für die kontinuierliche Zuführung des Beschickungsmaterials
in festem Zustand, die abnehmbar mit der ersten Einlassöffnung (17a) verbunden ist,
die in der oberen Schale (12) erhalten wurde, um durch dieselbe Beschickungsmaterial
in festem Zustand zuzuführen,
- eine zweite Zuführungsgruppe (102b) für die kontinuierliche Zuführung des Beschickungsmaterials
in festem Zustand, die abnehmbar mit der mindestens einen Beschickungsöffnung (20)
verbunden ist, die in dem Verschlussdach (13) für die Zuführung von Beschickungsmaterial
in festem Zustand durch dieses hindurch ausgebildet ist,
- wobei das Beschickungsmaterial in festem Zustand DRI, HDRI, HBI, festes Roheisen
und Schrott allein oder miteinander gemischt in einem Prozentsatz gleich oder höher
als 25 % des gesamten Beschickungsmaterials umfasst, und
wobei die während des Herstellungsprozesses des geschmolzenen Metalls im Ofen erzeugten
Dämpfe durch die erste Zuführungsgruppe (102a) zum Vorwärmen des jeweiligen Beschickungsmaterials
im festen Zustand abgeleitet werden,
- ein Zuführungsmodul für Beschickungsmaterial im geschmolzenen Zustand (103) zum
Zuführen von Beschickungsmaterial im geschmolzenen Zustand in den Ofen, das eine Zuführungsgruppe
(103a) zum Zuführen von Material im geschmolzenen Zustand umfasst, die mit der zweiten
Einlassöffnung (17b) verbunden ist, die in der oberen Schale (12) erhalten wird, um
durch dieselbe Beschickungsmaterial im geschmolzenen Zustand zuzuführen, das aus geschmolzenem
Gusseisen in einem Prozentsatz besteht, der gleich oder niedriger als 75% des gesamten
Beschickungsmaterials ist.
19. Metallurgische Anlage (100) nach Anspruch 12 zur Herstellung von Stahl ausgehend von
Beschickungsmaterial im festen und im flüssigen Zustand, wobei:
- das Verschlussdach (13) des metallurgischen Ofens die Durchgangsöffnung (18) für
den Durchgang mindestens einer Elektrode (E), die Entfernungsöffnung (21) und die
mindestens eine Beschickungsöffnung (20) für die Zuführung von Beschickungsmaterial
in festem Zustand durch diese hindurch offen hat,
- die obere Schale (12) die zweite Einlassöffnung (17b) zum Zuführen von Beschickungsmaterial
im geschmolzenen Zustand durch dieselbe offen hat, wobei die mögliche erste Einlassöffnung
(17a) zum Zuführen von Beschickungsmaterial im festen Zustand durch dieselbe geschlossen
ist,
und wobei die metallurgische Anlage (100) die folgenden aktiven Betriebsmodule umfasst:
- eine elektrische Energieversorgung (101) für das Metallbad, die mindestens eine
Elektrode umfasst, die durch die Durchgangsöffnung (18) des Verschlussdaches (13)
herausnehmbar in den Behälter eingeführt werden kann,
- ein Zuführungsmodul für Beschickungsmaterial in festem Zustand für die chargenweise
Zuführung von Beschickungsmaterial in festem Zustand in den Ofen durch die mindestens
eine Beschickungsöffnung (20), die in dem Dach erhalten wurde, und/oder durch die
Oberseite des Gefäßes bei offenem Verschlussdach (13), wobei das Beschickungsmaterial
in festem Zustand DRI, HDRI, HBI, festes Roheisen und Schrott allein oder miteinander
gemischt in einem Prozentsatz gleich oder höher als 25 % des gesamten Beschickungsmaterials
umfasst, und
- ein Zuführungsmodul für Beschickungsmaterial im geschmolzenen Zustand (103) zum
Zuführen von Beschickungsmaterial im geschmolzenen Zustand in den Ofen, das eine Zuführungsgruppe
(103a) zum Zuführen von Material im geschmolzenen Zustand umfasst, die mit der zweiten
Einlassöffnung (17b) verbunden ist, die in der oberen Schale erhalten wurde, um durch
dieselbe Beschickungsmaterial im geschmolzenen Zustand zuzuführen, wobei das Beschickungsmaterial
im geschmolzenen Zustand aus geschmolzenem Gusseisen in einem Prozentsatz besteht,
der gleich oder niedriger als 75% des gesamten Beschickungsmaterials ist.
1. Four métallurgique (10) du type convertible en un four à arc électrique ou en un convertisseur
pour la conduite de processus de production pour la production de métaux à l'état
fondu, en particulier d'acier ou de fonte,
caractérisé en ce qu'il comprend:
- une cuve comprenant:
- une coque inférieure (11) pour contenir le bain de métal, ledit bain de métal étant
composé de métal en fusion et d'une couche surnageante de laitier, dans lequel ladite
coque inférieure (11) est portée de manière basculante et est munie d'une ouverture
de décrassage (15) pour évacuer le laitier surnageant sur le métal en fusion et d'une
ouverture de coulée (16) pour couler le métal en fusion,
- une coque supérieure (12) positionnée de manière amovible sur ladite coque inférieure
(11) et munie
- d'une première ouverture d'entrée (17a) pour apporter, à travers celle-ci, de la
matière de charge à l'état solide et qui peut être associée à un premier groupe d'apport
(102a) pour l'apport en continu de ladite matière de charge à l'état solide et/ou
- d'une seconde ouverture d'entrée (17b) pour apporter, à travers celle-ci, de la
matière de charge à l'état fondu et qui peut être associée à un groupe d'apport (103a)
pour l'apport en continu de ladite matière de charge à l'état fondu,
- un toit de fermeture (13) pour la fermeture supérieure de ladite cuve, dans lequel
ledit toit de fermeture (13) est positionné de manière amovible au-dessus de ladite
coque supérieure (12) et est muni d'une ouverture de passage (18) pour le passage,
à travers celle-ci, d'au moins une électrode (E), d'au moins une ouverture de charge
(20) pour apporter, à travers celle-ci, de la matière de charge à l'état solide, et
d'au moins une ouverture d'évacuation (21) pour refouler les fumées gazeuses générées
à l'intérieur dudit four (10) pendant le processus de production,
- dans lequel au moins l'une parmi ladite première ouverture d'entrée (17a), ladite
seconde ouverture d'entrée (17b), ladite ouverture de passage (18), ladite ouverture
de charge (20) et ladite ouverture d'évacuation (21) est fermée ou peut être associée
à un élément de fermeture du type amovible,
- dans lequel ladite coque inférieure (11) possède un diamètre D et ladite cuve possède
une hauteur globale H allant de 0.70D à 1.25D,
ledit four (10) étant équipé d'un groupe d'injecteurs (22) pour l'injection d'oxygène
et d'autres matières premières gazeuses ou en poudre dans ledit four (10), dans lequel
lesdits injecteurs (22) sont insérés dans ladite coque supérieure (12) au niveau de
la paroi latérale de celle-ci.
2. Four métallurgique (10) selon la revendication 1, caractérisé en ce que ladite coque inférieure (11) possède un diamètre D et ladite cuve possède une hauteur globale H allant de 0.70D à 0.80D si le four est utilisé comme un four à arc électrique.
3. Four métallurgique (10) selon la revendication 1, caractérisé en ce que ladite coque inférieure (11) possède un diamètre D et ladite cuve possède une hauteur globale H allant de 0.80D à 1.25D si le four est utilisé comme un convertisseur.
4. Four métallurgique (10) selon l'une quelconque des revendications précédentes, caractérisé en ce que, S étant l'extension en m2 de la surface libre dudit bain de métal, il satisfait la condition selon laquelle,
R étant le rapport entre le débit, exprimé en m3/min de monoxyde de carbone (PCO) généré pendant la décarburation du bain de métal pour la production d'acier ou de
fonte et ladite extension S, ledit rapport R(PCO/S) est ≥ 16.
5. Four métallurgique (10) selon l'une quelconque des revendications précédentes, caractérisé en ce que, Lbmax étant le niveau maximal qui peut être atteint par le bain de métal contenu dans ladite
coque inférieure (11), la distance verticale h entre Lbmax et le bord inférieur de ladite ouverture de décrassage (15) va de 0.055D à 0.077D.
6. Four métallurgique (10) selon l'une ou plusieurs des revendications précédentes, caractérisé en ce que Lbmax étant le niveau maximal qui peut être atteint par le bain de métal contenu dans ladite
coque inférieure, la distance verticale h' entre Lbmax et le bord inférieur de ladite au moins une ouverture d'entrée (17a) va de 1.6 m à 2.2 m, dans lequel ladite ouverture d'entrée est ménagée pour l'entrée, à travers celle-ci,
de matière de charge à l'état solide.
7. Four métallurgique (10) selon l'une ou plusieurs des revendications précédentes, caractérisé en ce que la hauteur maximale dmax dudit toit (13) par rapport à ladite coque supérieure (12) va de 0.9 m à 2 m.
8. Four métallurgique (10) selon l'une ou plusieurs des revendications précédentes, caractérisé en ce qu'il comprend un élément de complétion (19) dudit toit de fermeture (13) qui peut être
associé de manière amovible à ladite ouverture de passage (18) pour le passage, à
travers celle-ci, d'au moins une électrode (E), dans lequel ledit élément de complétion
(19) comprend au moins un trou traversant de passage (19a) pour le passage, à travers
celui-ci, d'au moins une électrode.
9. Four métallurgique (10) selon la revendication 8, caractérisé en ce qu'il comprend un corps de fermeture (23) associé de manière amovible audit toit de fermeture
(13) ou audit élément de complétion (19) pour fermer ladite ouverture de passage (18)
ou ledit au moins un trou traversant de passage (19a), respectivement.
10. Four métallurgique (10) selon l'une ou plusieurs des revendications précédentes, caractérisé en ce que ledit groupe d'injection comprend au moins trois injecteurs (22).
11. Installation métallurgique modulaire (100) pour la conduite de processus de production de métal
en fusion, en particulier d'acier ou de fonte, comprenant un four métallurgique (10)
selon l'une ou plusieurs des revendications précédentes et au moins un module d'exploitation
sélectionné parmi le groupe comprenant:
- un module d'alimentation de puissance en énergie électrique (101) pour alimenter
en énergie électrique ledit bain de métal et comprenant au moins une électrode (E)
apte à être insérée de manière amovible dans ladite cuve à travers ladite ouverture
de passage (18) dudit toit de fermeture (13),
- un module d'apport pour apporter de la matière de charge à l'état solide (102) pour
l'apport en continu de matière de charge à l'état solide dans ledit four et comprenant,
pour sa part, au moins un groupe d'apport de matière de charge à l'état solide sélectionné
parmi
- un premier groupe d'apport (102a) pour l'apport en continu de ladite matière de
charge à l'état solide qui peut être associé de manière amovible à ladite première
ouverture d'entrée (17a) formée dans ladite coque supérieure (12) pour apporter, à
travers celle-ci, de la matière de charge à l'état solide,
- un second groupe d'apport (102b) pour l'apport en continu de ladite matière de charge
à l'état solide qui peut être associé de manière amovible à ladite au moins une ouverture
de charge (20) obtenue dans ledit toit de fermeture (13) pour apporter, à travers
celle-ci, de la matière de charge à l'état solide,
- un groupe d'apport de matière de charge à l'état fondu (103) pour l'apport de matière
de charge à l'état fondu dans ledit four et comprenant un groupe d'apport (103a) pour
apporter de la matière à l'état fondu, qui peut être associé de manière amovible à
ladite seconde ouverture d'entrée (17b) obtenue dans ladite coque supérieure (12)
pour apporter, à travers celle-ci, de la matière de charge à l'état fondu,
- un module d'apport de matière de charge à l'état solide pour l'apport par lots de
matière de charge à l'état solide dans ledit four à travers ladite au moins une ouverture
de charge (20) obtenue dans ledit toit de fermeture (13),
- un module d'extraction de fumées (105) pour l'extraction de fumées générées à l'intérieur
dudit four pendant le processus de production dudit métal en fusion et qui peut être
associé de manière amovible à ladite ouverture d'évacuation (21) obtenue dans ledit
toit de fermeture (13).
12. Four métallurgique (100) selon la revendication 11, pour la production d'acier ou
de fonte, dans lequel ladite matière de charge à l'état fondu est de la fonte à l'état
fondu et dans lequel ladite matière de charge à l'état solide comprend de la ferraille,
du DRI (fer de réduction directe), du HDRI (fer de réduction directe à chaud), de
la fonte brute et du HBI (fer briqueté à chaud), seuls ou en mélange avec deux des
autres ou plus, dans lequel la matière de charge apportée audit four comprend de la
matière de charge à l'état fondu et/ou de la matière de charge à l'état solide, seules
ou mélangées l'une avec l'autre.
13. Installation métallurgique (100) selon la revendication 12 pour la production d'acier
à partir de matière de charge à l'état solide uniquement, dans laquelle:
- le toit de fermeture (13) dudit four métallurgique possède ladite ouverture de passage
(18) ouverte et associée à un élément de complétion (19) comprenant au moins un trou
traversant de passage (19a) pour le passage à travers celui-ci d'au moins une électrode
(E), ladite ouverture d'évacuation (21) fermée et ladite au moins une ouverture de
charge (20) pour apporter, à travers celle-ci, de la matière de charge à l'état solide,
ouverte,
- ladite coque supérieure (12) possède une première ouverture d'entrée (17a) pour
apporter, à travers celle-ci, de la matière de charge à l'état solide, ouverte, et
une possible seconde ouverture d'entrée (17b) pour apporter, à travers celle-ci, de
la matière de charge à l'état fondu, fermée,
et dans lequel ladite installation métallurgique (100) comprend les modules d'exploitation
actifs suivants:
- un module d'alimentation de puissance en énergie électrique (101) audit bain de
métal et comprenant au moins une électrode (E) qui peut être insérée de manière amovible
dans ladite cuve à travers ledit trou traversant de passage (19a) dudit élément de
complétion (19),
- un module d'apport de matière de charge à l'état solide (102) pour l'apport en continu
de matière de charge à l'état solide dans ledit four, comprenant pour sa part :
- un premier groupe d'apport (102a) pour l'apport en continu de ladite matière de
charge à l'état solide associé à ladite première ouverture d'entrée (17a) obtenue
dans ladite coque supérieure (12) pour apporter, à travers celle-ci, de la matière
de charge à l'état solide, dans lequel ladite matière de charge à l'état solide est
de la ferraille ou un mélange de ferraille et de fonte brute solide,
- un second groupe d'apport (102b) pour l'apport en continu de ladite matière de charge
à l'état solide associé à ladite au moins une ouverture de charge (20) obtenue dans
ledit toit pour apporter, à travers celle-ci, de la matière de charge à l'état solide,
dans lequel ladite matière de charge à l'état solide est du DRI ou de la fonte solide
ou des liants, seuls ou mélangés les uns avec les autres,
dans lequel les fumées générées à l'intérieur dudit four pendant le processus de production
sont évacuées à travers ledit premier groupe d'apport (102a) pour préchauffer la matière
de charge à l'état solide respective.
14. Installation métallurgique (100) selon la revendication 12 pour la production d'acier
à partir de matière de charge à l'état solide uniquement, dans laquelle :
- le toit de fermeture (13) dudit four métallurgique possède ladite ouverture de passage
(18) ouverte et associée à un élément de complétion (19) comprenant au moins un trou
traversant de passage (19a) pour le passage à travers celui-ci d'au moins une électrode
(E), ladite ouverture d'évacuation (21) ouverte et ladite au moins une ouverture de
charge (20) pour apporter, à travers celle-ci, de la matière de charge à l'état solide,
ouverte,
- ladite coque supérieure (12) possède ladite première ouverture d'entrée (17a) et
ladite seconde ouverture d'entrée (17b) pour apporter, à travers celles-ci, de la
matière de charge à l'état solide ou à l'état fondu, fermées,
et dans lequel ladite installation métallurgique (100) comprend les modules d'exploitation
actifs suivants :
- un module d'alimentation de puissance en énergie électrique (101) audit bain de
métal et comprenant au moins une électrode (E) qui peut être insérée de manière amovible
dans ladite cuve à travers ledit trou traversant de passage (19a) dudit élément de
complétion (19),
- au moins un module d'apport de matière de charge à l'état solide pour l'apport par
lots de matière de charge à l'état solide dans ledit four à travers ladite au moins
une ouverture de charge (20) obtenue dans ledit toit de fermeture (13) et/ou à travers
le dessus de ladite cuve avec le toit de fermeture (13) ouvert,
- un module d'extraction de fumées (105) pour l'extraction de fumées générées à l'intérieur
dudit four pendant le processus de production dudit métal en fusion et associé à ladite
ouverture d'évacuation (21) obtenue dans ledit toit de fermeture (13), dans lequel
ladite matière de charge à l'état solide comprend un mélange de DRI et de ferraille
ou de fonte brute solide et de ferraille.
15. Installation métallurgique (100) selon la revendication 12 pour la production de fonte
à partir de matière de charge à l'état solide uniquement, dans laquelle:
- le toit de fermeture (13) dudit four métallurgique possède ladite ouverture de passage
(18) ouverte pour le passage, à travers celle-ci, d'au moins une électrode (E), ladite
ouverture d'évacuation (21) ouverte et ladite au moins une ouverture de charge (20)
pour apporter, à travers celle-ci, de la matière de charge à l'état solide, ouverte,
- ladite coque supérieure (12) possède ladite première ouverture d'entrée (17a) et
ladite seconde ouverture d'entrée (17b) pour apporter, à travers celles-ci, de la
matière de charge à l'état solide ou à l'état fondu, fermées,
et dans lequel ladite installation métallurgique (100) comprend les modules d'exploitation
suivants:
- un module d'alimentation de puissance en énergie électrique (101) audit bain de
métal et comprenant au moins une électrode (E) qui peut être insérée de manière amovible
dans ladite cuve à travers ladite ouverture de passage (18) dudit toit de fermeture
(13),
- un module d'apport de matière de charge à l'état solide pour apporter de la matière
de charge à l'état solide dans ledit four à travers ladite au moins une ouverture
de charge (20) obtenue dans ledit toit de fermeture (13) et/ou à travers le dessus
de ladite cuve avec le toit de fermeture (13) ouvert,
- un module d'extraction de fumées (105) pour l'extraction de fumées générées à l'intérieur
dudit four pendant le processus de production dudit métal en fusion et associé à ladite
ouverture d'évacuation (21) obtenue dans ledit toit de fermeture (13), dans lequel
ladite matière de charge à l'état solide est constituée de DRI ayant un pourcentage
en carbone supérieur ou égal à 5 % mélangé avec de possibles liants.
16. Installation métallurgique (100) selon la revendication 12 pour la production d'acier
à partir de matière de charge à l'état solide et à l'état liquide, dans laquelle :
- le toit de fermeture (13) dudit four métallurgique possède ladite ouverture de passage
(18) pour le passage, à travers celle-ci, d'au moins une électrode, fermée, ladite
ouverture d'évacuation (21) fermée et ladite au moins une ouverture de charge (20)
pour apporter, à travers celle-ci, de la matière de charge à l'état solide, ouverte,
- ladite coque supérieure (12) possède ladite première ouverture d'entrée (17a) pour
apporter, à travers celle-ci, de la matière de charge à l'état solide, ouverte, et
ladite seconde ouverture d'entrée (17b) pour apporter, à travers celle-ci, de la matière
de charge à l'état fondu, ouverte,
et dans lequel ladite installation métallurgique (100) comprend les modules d'exploitation
actifs suivants:
- un module d'apport de matière de charge à l'état solide (102) pour l'apport en continu
de matière de charge à l'état solide dans ledit four et, comprenant pour sa part :
- un premier groupe d'apport (102a) pour l'apport en continu de ladite matière de
charge à l'état solide associé à ladite première ouverture d'entrée (17a) obtenue
dans ladite coque supérieure (12) pour apporter, à travers celle-ci, de la matière
de charge à l'état solide,
- un second groupe d'apport (102b) pour l'apport en continu de ladite matière de charge
à l'état solide associé à ladite au moins une ouverture de charge (20) obtenue dans
ledit toit de fermeture (13) pour l'apport, à travers celle-ci, de matière de charge
à l'état solide,
dans lequel ladite matière de charge à l'état solide comprend du DRI, du HDRI, du
HBI, de la fonte brute solide et de la ferraille, seuls ou mélangés les uns aux autres,
dans un pourcentage égal ou inférieur à 25 % de la matière de charge totale, et
dans lequel les fumées générées à l'intérieur dudit four pendant le processus de production
dudit métal en fusion sont évacuées à travers ledit premier groupe d'apport (102a)
pour préchauffer la matière de charge à l'état solide respective,
- un module d'apport de matière de charge à l'état fondu (103) pour apporter de la
matière de charge à l'état fondu à l'intérieur dudit four et comprenant un groupe
d'apport (103a) pour apporter de la matière à l'état fondu associé à ladite seconde
ouverture d'entrée (17b) obtenue dans ladite coque supérieure (12) pour apporter,
à travers celle-ci, de la matière de charge à l'état fondu, constituée de fonte en
fusion dans un pourcentage égal ou supérieur à 75 % de la matière de charge totale.
17. Installation métallurgique (100) selon la revendication 12 pour la production d'acier
à partir de matière de charge à l'état solide et à l'état liquide, dans laquelle:
- le toit de fermeture (13) dudit four métallurgique possède ladite ouverture de passage
(18) pour le passage, à travers celle-ci, d'au moins une électrode, fermée, ladite
ouverture d'évacuation (21) ouverte et ladite au moins une ouverture de charge (20)
pour apporter, à travers celle-ci, de la matière de charge à l'état solide, ouverte,
- ladite coque supérieure (12) possède ladite seconde ouverture d'entrée (17b) pour
apporter, à travers celle-ci, de la matière de charge à l'état fondu, ouverte, ladite
première ouverture d'entrée possible (17a) pour apporter, à travers celle-ci, de la
matière de charge à l'état solide, étant fermée,
et dans lequel ladite installation métallurgique (100) comprend les modules d'exploitation
actifs suivants:
- au moins un module d'apport de matière de charge à l'état solide pour l'apport par
lots de matière de charge à l'état solide dans ledit four à travers ladite au moins
une ouverture de charge (20) obtenue dans ledit toit de fermeture (13) et/ou à travers
le dessus de ladite cuve avec ledit toit de fermeture (13) ouvert, dans lequel ladite
matière de charge à l'état solide comprend du DRI, du HDRI, du HBI, de la fonte brute
solide et de la ferraille, seuls ou mélangés les uns aux autres, dans un pourcentage
égal ou inférieur à 25 % de la matière de charge totale, et
- un module d'apport de matière de charge à l'état fondu (103) pour apporter de la
matière de charge à l'état fondu dans ledit four et comprenant un groupe d'apport
(103a) pour apporter de la matière à l'état fondu associé à ladite seconde ouverture
d'entrée (17b) obtenue dans ladite coque supérieure (12) pour apporter, à travers
celle-ci, de la matière de charge à l'état fondu, ladite matière de charge à l'état
fondu étant composée de fonte en fusion dans un pourcentage égal ou supérieur à 75
% de la matière de charge totale.
18. Installation métallurgique (100) selon la revendication 12 pour la production d'acier
à partir de matière de charge à l'état solide et à l'état liquide, dans laquelle:
- le toit de fermeture (13) dudit four métallurgique possède ladite ouverture de passage
(18) pour le passage, à travers celle-ci, d'au moins une électrode, ouverte, ladite
ouverture d'évacuation (21) fermée et ladite au moins une ouverture de charge (20)
pour apporter, à travers celle-ci, de la matière de charge à l'état solide, ouverte,
- ladite coque supérieure (12) possède ladite première ouverture d'entrée (17a) pour
apporter, à travers celle-ci, de la matière de charge à l'état solide, ouverte, et
ladite seconde ouverture d'entrée (17b) pour apporter, à travers celle-ci, de la matière
de charge à l'état fondu, ouverte,
et dans lequel ladite installation métallurgique (100) comprend les modules d'exploitation
actifs suivants:
- une alimentation de puissance en énergie électrique (101) audit bain de métal et
comprenant au moins une électrode qui peut être insérée de manière amovible dans ladite
cuve à travers ladite ouverture de passage (18) dudit toit de fermeture (13),
- un module d'apport de matière de charge à l'état solide (102) pour l'apport en continu
de matière de charge à l'état solide dans ledit four et comprenant pour sa part:
- un premier groupe d'apport (102a) pour l'apport en continu de ladite matière de
charge à l'état solide associé de manière amovible à ladite première ouverture d'entrée
(17a) obtenue dans ladite coque supérieure (12) pour apporter, à travers celle-ci,
de la matière de charge à l'état solide,
- un second groupe d'apport (102b) pour l'apport en continu de ladite matière de charge
à l'état solide associé de manière amovible à ladite au moins une ouverture de charge
(20) obtenue dans ledit toit de fermeture (13) pour l'apport, à travers celle-ci,
de matière de charge à l'état solide,
dans lequel ladite matière de charge à l'état solide comprend du DRI, du HDRI, du
HBI, de la fonte brute solide et de la ferraille, seuls ou mélangés les uns aux autres,
dans un pourcentage égal ou supérieur à 25 % de la matière de charge totale, et dans
lequel les fumées générées à l'intérieur dudit four pendant le processus de production
dudit métal en fusion sont évacuées à travers ledit premier groupe d'apport (102a)
pour préchauffer la matière de charge à l'état solide respective,
- un module d'apport de matière de charge à l'état fondu (103) pour apporter de la
matière de charge à l'état fondu dans ledit four et comprenant un groupe d'apport
(103a) pour apporter de la matière à l'état fondu associé à ladite seconde ouverture
d'entrée (17b) obtenue dans ladite coque supérieure (12) pour apporter, à travers
celle-ci, de la matière de charge à l'état fondu, constituée de fonte en fusion dans
un pourcentage égal ou inférieur à 75 % de la matière de charge totale.
19. Installation métallurgique (100) selon la revendication 12 pour la production d'acier
à partir de matière de charge à l'état solide et à l'état liquide, dans laquelle:
- le toit de fermeture (13) dudit four métallurgique possède ladite ouverture de passage
(18) pour le passage, à travers celle-ci, d'au moins une électrode (E), ouverte, ladite
ouverture d'évacuation (21) ouverte et ladite au moins une ouverture de charge (20)
pour apporter, à travers celle-ci, de la matière de charge à l'état solide, ouverte,
- ladite coque supérieure (12) possède ladite seconde ouverture d'entrée (17b) pour
apporter, à travers celle-ci, de la matière de charge à l'état fondu, ouverte, ladite
première ouverture d'entrée possible (17a) pour apporter, à travers celle-ci, de la
matière de charge à l'état solide, étant fermée,
et dans lequel ladite installation métallurgique (100) comprend les modules d'exploitation
actifs suivants:
- une alimentation de puissance en énergie électrique (101) audit bain de métal et
comprenant au moins une électrode qui peut être insérée de manière amovible dans ladite
cuve à travers ladite ouverture de passage (18) dudit toit de fermeture (13),
- un module d'apport de matière de charge à l'état solide pour l'apport par lots de
matière de charge à l'état solide dans ledit four à travers ladite au moins une ouverture
de charge (20) obtenue dans ledit toit et/ou à travers le dessus de ladite cuve avec
ledit toit de fermeture (13) ouvert, dans lequel ladite matière de charge à l'état
solide comprend du DRI, du HDRI, du HBI, de la fonte brute solide et de la ferraille,
seuls ou mélangés les uns aux autres, dans un pourcentage égal ou supérieur à 25 %
de la matière de charge totale, et
- un module d'apport de matière de charge à l'état fondu (103) pour apporter de la
matière de charge à l'état fondu dans ledit four et comprenant un groupe d'apport
(103a) pour apporter de la matière à l'état fondu associé à ladite seconde ouverture
d'entrée (17b) obtenue dans ladite coque supérieure pour apporter, à travers celle-ci,
de la matière de charge à l'état fondu, ladite matière de charge à l'état fondu étant
constituée de fonte en fusion dans un pourcentage égal ou inférieur à 75 % de la matière
de charge totale.